Thursday, February 27, 2020

IoT technology stack – from IoT devices

IoT technology stack – from IoT devices

We as a whole realize that IoT is changing ventures in all cases – from agribusiness to human services to assembling and everything in the middle of – yet what is IoT, precisely? Working for an Internet of Things (IoT) organization, I get posed that inquiry constantly and, over that time, I've endeavored to come it down to something anybody can comprehend. Here's all that you have to think about the web of things.

In the event that you recently read that and thought, "alright… what?", you're not the only one. The vast majority neither need nor to need to plunge into the bare essential of IoT. So right now, furnish you with a straightforward clarification of the Internet of Things and how it might affect you. This can likewise fill in as an asset to impart to other people who need a prologue to IoT (like companions, relatives, or clients).

Before we bounce in, note that "The Internet of Things" and "IoT" can and will be utilized conversely. What's more, a fast tip: abstain from saying "the IoT."
How are you perusing this post at the present time? It may be on work area, on portable, possibly a tablet, however whatever gadget you're utilizing, it's undoubtedly associated with the web.

A web association is a great thing, it give every one of us sorts of advantages that simply weren't conceivable previously. In case you're mature enough, think about your cellphone before it was a cell phone. You could call and you could message sure, yet now you can peruse any book, observe any motion picture, or tune in to any melody all in the palm of your hand. Also, that is simply to give some examples of the inconceivable things your cell phone can do.

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Monday, February 24, 2020

Roles and Responsibilities Of an Audio Visual Technician

Roles and Responsibilities Of an Audio Visual Technician
  • Accountable for the receipt, issue, requisitioning, procuring and inventory of AV related items
  • Responsible for setup, operation, and maintenance of all video recorders, computer editing systems, in-house closed-circuit television systems, and other A/V equipment owned by the Department of Simulation.
  • Responsible for creative program production on audio and videotape including creative video and audio editing techniques.
  • Operates fixed and portable video camera(s) in the recording of video footage for use in various educational programs.
  • Works closely with employees and supervisors to develop scripts in support of the center’s goals such as rgency operations, educational programs, public affairs, technical, environmental, documentary programs and public service announcements for radio and television.
  • Provides narration of video and audio productions and slide productions
  • Coordinates the selection of visuals (images, video clips) to provide graphic and photographic materials to be used in production.
  • Working knowledge of recording equipment, both video, nd audio, to select and conform to the appropriate situations in meshing all production aspects together into a completed product.
  • Evaluates and updates new audio visual technology to implement and enhance the bility to provide state-of-the-art products.
  • Create databank of relevant educational videos and images and other educational content for future use by the Department of Simulation.

Wednesday, February 19, 2020

Software Engineering Salary and Career outlook

Software Engineering  Salary and Career outlook

The job market for Software Engineers is incredibly broad. There are software components involved in virtually every modern development you can think of. Computers control everything from aircraft to medical imaging devices, and these systems are conceived and executed by Software Engineers.
Since it’s such a big part of our daily lives, most people think immediately of software running on the Internet when they envision a career in this arena. While there are a plethora of rewarding jobs developing software for use on the Internet, it’s a good thing to know that there are also rewarding jobs in areas like computer simulations, artificial intelligence, real-time systems, aerospace, and embedded systems.
According to an October 18th, 2012 report on GlassDoor.com, Software Engineers at top companies average $92,648 annually. Google topped the compensation charts, paying their Software Engineers an average of $128,336.
The US Government’s Bureau of Labor Statistics reports earnings on multiple software development jobs, none specifically labeled as Software Engineers. However, the average annual earnings reported for several different Software Engineering-related career fields corroborate the salary figures reported by GlassDoor.
There are numerous professional associations where Software Engineers can network and share information. One of the largest and oldest is the Association for Computing Machinery (ACM). The ACM boasts membership of more than 100,000 professionals as of 2011.
Another major association is the Institute of Electrical and Electronics Engineers (IEEE). While IEEE’s title might not sound like it would be fruitful for Software Engineers, the IEEE Computer Society has teamed with the ACM on numerous projects to enhance the professionalism of the Software Engineering field.
Like any degree in engineering, a Software Engineering degree is a demanding course of study. It requires an aptitude for math and science and favors those who love to think logically and methodically. The rewards for pursuing this degree are numerous and tangible: great salary, a growing job market, and a career working with like-minded professionals building the future. Check out the many programs available and see if one is right for you.

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Tuesday, February 18, 2020

Mining and Geological Engineering Education Requirements

Mining and Geological Engineering Education Requirements

Requiring a minimum of a bachelor’s degree from an accredited college or university, the licensing requirements for geological and mining engineering vary by state. Specific degree programs for aspiring geological and mine engineers include Geology, Geophysics, Geological Engineering, Mining Engineering, Mineral Preparation Engineering and Social Geology, among many others, and range from undergraduate Bachelors programs to advanced graduate and post-graduate programs. In addition to materials mining and extraction, additional studies and industry focuses include ecological impact research, which measures broader environmental and ecological effects of mining operations, social geological impact research which focuses on both the sociological hazards and benefits to geological or mining efforts and discovery-oriented exploration, studying geological formations below the Earth’s surface so as to refine the broader understanding of the planet’s composition. Regulated by the Mine Safety and Health Administration (MSHA,) the field of geological and mine engineering is one with an intense focus on hazard awareness and occupational safety.
As with any dynamic and engaging field of study, the geological, mineral and mining industries and sciences, the training and education continue well after one has earned their degree. With numerous trade associations, professional networks and academic research societies, such as the American Institute of Professional Geology (AIPG,) American Rock Mechanics Association (ARMA,) and Association of Environmental and Engineering Geologists (AEG,) the field of geological and mine engineering is one of a continually evolving nature, with regular conferences and training programs designed to keep geological professionals on the cutting edge of their chosen pursuits. Combining age old techniques in respect to surveying, exploration and extraction, new technologies continue to emerge in the field, bringing new and exciting methods of research and exploratory prospecting into the hands of professionals and students every year. And as these new technologies and discoveries continue to change the professional landscape for those entering the engineering fields of geology or mining, the increasing demands for raw and precious materials by industry and the public at large have led to an increased demand for well educated,

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Monday, February 17, 2020

Mechatronic Engineering Career

Mechatronic Engineering Career

Mechatronics engineering revolves around the design, construction and operation of intelligent products and systems, stemming from the integration of hardware and software applications. The Japanese engineer Tetsuro Mori developed the name for the field in 1969 while working as an executive engineer at the firm Yaskawa. The field is still evolving and sometimes is still referred to as Asset Management in the industry. Professionals in this arena develop approaches to industrial problems employing mechanical and electronic solutions and computer applications. They develop products through the integration of diverse technologies for streamlining processes and applications in endeavors like underwater exploration. These engineers create and evaluate factory production lines blending manufacturing and technologies to enhance efficiency. In addition, they preserve and augment manufacturing designs and processes in applications such as robot floor cleaners.
If you are looking for information about Mechatronics and want to speak with colleges and universities about earning your engineering degree, we can help. We work with schools across the nation to inform students of their options for education. Use our directory of schools to request more information today about their programs.
Mechatronic engineers traditionally work in a laboratory, processing plant or engineering office setting, especially among product developers, manufacturing firms, mining or forestry industries, aerospace and defense, government and industry research groups, as well as electrical power facilities. In addition, the skill set is highly desired by prominent global enterprises in the automotive, aerospace and consumer products sectors and in innovative technology firms that manufacture and supply software components and equipment. Often graduates will establish their own firms or capitalize on research opportunities in the fields of bioengineering or nanotechnology. The demand for mechatronic specialists will continue to grow as more institutions seek to integrate technological innovations in the computer, electronic and sensor areas to enhance product processes and services. Institutions across the globe that have capitalized on mechatronics technology include Bosch, Royal Dutch Shell, FOX Racing, and Keurig Green Mountain.

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Friday, February 14, 2020

Industrial Engineering Curriculum

Industrial Engineering Curriculum

The typical undergraduate degree needed to become an Industrial Engineer is the Bachelor of Science (BS) or Bachelor of Science and Engineering (BSE) in Industrial Engineering (IE). Some Industrial Engineers hold degrees in Industrial & Operations Engineering (IOE), or Industrial & Systems Engineering (ISE).
Similarly to other undergraduate engineering programs, the typical curriculum is built on a foundation of broad math and science courses. Examples include courses in chemistry, physics, mechanics, materials science, computer science, electronics/circuits, and engineering design. In addition several engineering mathematics courses, such as calculus, differential equations, and statistics, are required. These courses are required by virtually all accredited undergraduate engineering programs and prepare students for most engineering licensure exams.
Following the foundational courses, students take courses specific to IE. These specialized courses are in areas such as systems theory, design or analysis, ergonomics/safety, stochastics, optimization, advanced mathematics, computation or modeling, and/or engineering economics. Other subjects typically studied by IE students include management, finance, strategy and other business-oriented course, and social science courses such as psychology or public policy. Some business schools offer programs that overlap with IE, but the engineering programs tend to be more quantitative as well as more rigorous in the basic sciences and mathematics. Bachelor’s degree programs typically include both classroom and laboratory experiences.
At the postgraduate level, the most commonly-earned degree is the Master of Science (MS) or Master of Science and Engineering (MSE) in IE. Typical coursework at this level tends to be focused on operations research and optimization techniques, engineering economics, supply chain management and logistics, facilities and work-space design, quality engineering, reliability engineering, human factors engineering and ergonomics, robotics, productivity improvement, operations management, time and motion studies, computer aided manufacturing, and others.
A few colleges and universities offer 5-year degree programs in IE that lead to both a bachelor’s and master’s degree at graduation. The advantage of obtaining a graduate degree is that it opens up the possibility of working as a professor at a college or university, or working in research and development. There are also some 5-year or 6-year cooperative education programs that combine classroom study with practica in the work world. These programs enable students to gain real-world experience and finance part of their education Programs in IE are accredited by ABET.

Thursday, February 13, 2020

Civil Engineers Jobs and Work Nature

Civil Engineers Jobs and Work Nature

Civil Engineers focus on six basic infrastructure systems. The structural engineer focuses on design and analysis of buildings and bridges. The geotechnical engineer designs and builds tunnels, pipelines, embankments, and foundations. The environmental engineer analyzes and solves problems involving air and water quality and management of waste and hazardous materials.
Water resources engineers seek ways to improve water sources through hydrology, meteorology, and fluid dynamics. Construction engineers manage projects for erecting buildings, digging tunnels, and laying roads. Transportation engineers design, construct and maintain highways, railways, airfields and ports.
Graduates work for nongovernmental organizations, private companies, government agencies, public or private institutions, national research laboratories, or educational institutions. As for research, while masters-degree graduates can be involved through projects or assignments, it is primarily only those at the Ph.D. level who perform research in this field.

How Much Does a Civil Engineer Earn?

Bureau of Labor Statistics for Occupational Employment and Wages (BLS) show civil engineers as those who perform planning, designing of building structures and facilities, and overseeing their construction and maintenance. These structures include water and sewage systems, roads and railroads, airports and harbors, bridges and tunnels, channels and dams, irrigation projects and pipelines, and power plants. The Bureau's data include engineers for geo-technical, architectural, structural, traffic and ocean expertise. Hydrologists are not included.
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Tuesday, February 11, 2020

Applied Engineering Career

Applied Engineering Career

Applied engineers work on the application, design and technical components in the development of new products. They integrate systems, thereby enhancing the manufacturing and utilization of an application as well as oversee the development teams within a company. Specific fields of applied engineering including six sigma, learn enterprises, quality control, nanotechnology, manufacturing systems and supply chain logistics and systems, as well as motorsport technology applications. These professionals employ a deliberate approach to solving a medley of problems regarding processes and flow systems, underscoring their highly refined technical, interpersonal and communication skills. Applied engineers have been instrumental in the development of aircraft, automobiles, and smartphones, among other products. If you are interested in becoming an applied engineer, contact the schools below this information to request information about programs near you!

Job Functions of Applied Engineers

These professionals demonstrate a proclivity to blend technical expertise with real world applications. In industrial settings such as robotics, aviation, computer drafting, electronics, graphic communications, construction and nanofabrication, applied engineers exhibit a range of skills, as they daily execute a bevy of tasks and duties to realize the fruition of a project. They employ statistics in control charts and tables to monitor system integrity; examine and/or establish quality control systems in a facility; execute production timelines; refine inventory systems; utilize production innovation in enhancing management; maintain standards in accordance with federal and municipal codes in maintaining safety and health standards; develop solutions to industrial organization problems; apply marketing and business acumen in the product lifecycle, and more Top firms looking to hire applied engineers include Northrop Grumman, Ford Motor Company and Motorola, Inc.
A Bachelor’s Degree is required by employers to receive a job offer from a firm to work as an applied engineer. This course of study explores the application of principles regarding the design, and creation of products and systems within a manufacturing context. Programs delve into issues as quality control, project management, systems integration and manufacturing processes as well as strive to refine critical-thinking and problem-solving capacities. Students take classes in the basics of production planning, materials science and personnel safety. To assume management positions with some firms, advanced degrees such as a Master’s or Ph.D. may be required. Holders of advanced degrees also have the credentials to teach at the university level. From a business perspective, those seeking executive roles should work to develop their acumen in budget management and negotiation, as they will be asked to broker deals with suppliers and other assets. Superb oral and written communication skills, as well as leadership abilities, are highly coveted.

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Monday, February 10, 2020

Petroleum Engineering Career and Nature of Work

Petroleum Engineering Career and Nature of Work

Petroleum engineering deals with the production of hydrocarbons—the products of crude oil and natural gas. This above-ground field focuses on recovering fossil fuels from below ground in the most economical and environmentally friendly ways.
Trained to understand the physical behavior of oil, water, and gas deep in porous rock and under high pressure, these skilled engineers make reliable estimations of the volume of a resource's reservoir.
They form teams with geologists to determine the best methods for depleting reservoirs. Related disciplines include drilling, reservoir simulation, well engineering, petroleum geology, and geophysics.
Since the beginning of petroleum engineering, in the early 20th century, many easily accessed deposits have been depleted. Fuel harvesting has become more dependent on fresh technologies incorporating horizontal drilling and computer modeling.
Drilling in deserts and in deep waters requires today's engineers to have expertise in intelligent systems, geomechanics, and hydraulics, naming only a few things on their growing list of knowledge bases.
This curriculum combines college-level mathematics with basic sciences, developing a working knowledge of thermodynamics, material properties, fluid mechanics, material strengths, transport situations, and phase behavior (what to expect from resources when working with them).
Students develop competence in well design and analysis, drilling procedures, and evaluation of subsurface geology. They design and analyze systems that produce, inject, and handle fluids, optimizing resource development and management, using reservoir engineering principles and practices. They are proficient with project economics and resource valuation practices for decision-making under risky and uncertain conditions.

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Friday, February 7, 2020

Petroleum Engineering Degrees

Petroleum Engineering Degrees

Petroleum engineering deals with the production of hydrocarbons—the products of crude oil and natural gas. This above-ground field focuses on recovering fossil fuels from below ground in the most economical and environmentally friendly ways.
Trained to understand the physical behavior of oil, water, and gas deep in porous rock and under high pressure, these skilled engineers make reliable estimations of the volume of a resource's reservoir.
They form teams with geologists to determine the best methods for depleting reservoirs. Related disciplines include drilling, reservoir simulation, well engineering, petroleum geology, and geophysics.
Since the beginning of petroleum engineering, in the early 20th century, many easily accessed deposits have been depleted. Fuel harvesting has become more dependent on fresh technologies incorporating horizontal drilling and computer modeling.
Drilling in deserts and in deep waters requires today's engineers to have expertise in intelligent systems, geomechanics, and hydraulics, naming only a few things on their growing list of knowledge bases.
This curriculum combines college-level mathematics with basic sciences, developing a working knowledge of thermodynamics, material properties, fluid mechanics, material strengths, transport situations, and phase behavior (what to expect from resources when working with them).
Students develop competence in well design and analysis, drilling procedures, and evaluation of subsurface geology. They design and analyze systems that produce, inject, and handle fluids, optimizing resource development and management, using reservoir engineering principles and practices. They are proficient with project economics and resource valuation practices for decision-making under risky and uncertain conditions.
Topping off this degree is a design experience, preparing students for engineering practice, using the knowledge and skills acquired in their coursework.

Thursday, February 6, 2020

Thermal Engineers Career Outlook

Thermal Engineers Career Outlook

Thermal engineering professionals have access to a medley of organizations and associates to bolster their careers. From the American Society of Mechanical Engineers (ASME), which features a library of resources for present and future practitioners, to the Technology Student Association (TSA), and the National Society of Professional Engineers (NSPE), students and seasoned thermal engineers access information and soil-building resources to buttress their daily learning. They specifically learn of the constantly evolving developments in technology and best practices that are transforming the industry. In addition, updates are provided on events, news and congresses within the field that endeavor to unite and strengthen the community. Young engineers have access to mentoring and networking opportunities that will facilitate their entry and rise into the profession. Moreover, prospective job candidates have access to recruiters from prestigious global firms like Intel, Sony and ConEd. As stated by the U.S. Bureau of Labor Statistics (BLS), the job prospects for thermal engineers are predicted to continue to grow by 9 percent through 2020. The U.S. states of California and Texas are geographic locales featuring the most opportunities for these professionals. According to compensation statistics at O*Net salary data, these engineers earned a median salary of $82,100.

Real Life Impact of Thermal Engineers

Thermal engineers have been instrumental in changing the way people find and use energy throughout the world as well as in pushing space exploration into new realms. Most people think of Google as an Internet search engine company, but the firm has expanded its resources into creating better energy solutions for the planet. The firm actively recruits thermal engineers to work on its project for developing clean and affordable power grids. Their Energy Access team endeavors to recruit and nurture engineers to its efforts, underscoring its conviction in its identity as an engineering firm.
Moreover, the University College London (UCL) Mullard Space Science Laboratory considers the work of its thermal engineers as vital for enhancing space exploration initiatives. One of their professionals, Christine Brockley-Blatt, has exemplified the seamless transition these practitioners make from the classroom to real world applications. After completing her undergraduate degree in Mechanical Engineering and Physics, Brockley-Blatt completed an internship with an aerospace firm, whereby she trained on a project dealing with the landing gear and propeller technology for a medley of aircraft models. She then applied more of her thermal engineering training to an automotive firm. With UCL she currently works as a project manager on cooling technology in outer space exploration solutions. On a daily basis, she employs calculations in mechanical and thermal capacities, performs project management duties, and demonstrates oral and written communications. Her rich educational background and professional experience illuminate the depth and versatility the field requires of its practitioners to excel.
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Vehicle Engineering Degree

Vehicle Engineering Degree

Very few U.S. universities offer official degrees in vehicle engineering, and thus most practitioners in the field elect to study mechanical engineering. A Bachelor’s Degree is required as a minimum qualification for securing employment in the field. Many mechanical engineering programs integrate courses in automotive electronics and power systems into their curriculum. Students aspiring for the academic certification should demonstrate a strong interest and capacity in math and science courses such as calculus, physics, and more importantly computer science, as most vehicles and systems are based on digital platforms. Students who embark upon advanced education at the graduate level have the skills and training to thrive in the global marketplace. Professionals with Master’s degrees and/or Ph.D.’s have focused their efforts on hybrid electric automotive technology and systems cases. Furthermore, they have the ability to assume senior executive positions within their firms, while others branch out to begin their own ventures. Engineers with this level of academic and professional experience also teach college students. Other skills that have proven to serve aspiring candidates well include strong problem solving skills, superb written and oral communication capacities, multitasking, budget management, team-building and social skills, as well as independent judgment.

Professional Outlook and Salary for Vehicle Engineers

Professionals in this field have been integral in developing the hybrid electric car technology that has transformed the automotive industry. The American Society of Mechanical Engineers (ASME) provides a bevy of resources for current and aspiring engineers in the field. Moreover, the National Society of Professional Engineers (NSPE), furnish professionals and students with transformative knowledge and tools to embolden their ability to thrive as technology and techniques evolve. There are regular updates on news in the industry, events, seminars and educational conferences to enhance and develop the skills of the community. In addition, professionals capitalize on networking and mentoring opportunities as well as recruiting efforts from major corporations like Ford Motor Co. and General Electric. Based on data from the U.S. Bureau of Labor Statistics (BLS), the employment opportunities for these engineers is expected to grow through the year 2020 by 9 percent. The U.S. cities with the most opportunities and highest salaries for these professionals are Detroit and Auburn Hills, Michigan. The states of California and Texas are the next two locations with the greatest career prospects. According to statistics at O*Net salary data, these engineers earned a median salary of $82,100.
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Wednesday, February 5, 2020

Working Life of an Industrial Engineer

Working Life of an Industrial Engineer

Depending upon the specific tasks they are performing, industrial engineers work both in offices and in the settings they are working to improve. If they are observing problems, for instance, they may watch workers assemble parts in a factory, or staff performing their functions in hospitals. When solving problems, industrial engineers may work in an office at a computer, where they examine data that they themselves, or others, have gathered. Industrial engineers may need to travel for work in order to observe processes and make assessments in various work settings. In 2012, the industries that employed the greatest number of industrial engineers were: aerospace product and parts manufacturing, machinery manufacturing, architectural, engineering, and related services, motor vehicle parts manufacturing, and management of companies and enterprises. Industrial engineers need good interpersonal skills to be able to work alongside other professionals and serve as a bridge between the technical and business sides of an organization.
Recently, the University of Chicago conducted a study to obtain information about job satisfaction in the United States. Although job and career are not the only determinants of overall happiness and life satisfaction, they do contribute substantially to an individual’s sense of well-being. According to the study, the occupation “industrial engineer” was among the top ten careers associated with general happiness. In fact, it ranked ninth. When compensation for these top-ten careers was examined, “industrial engineers” ranked third.
When looking at the reported reasons for happiness, i.e. creativity, use of expertise, helping others, it is easy to understand why industrial engineers ranked in the top ten careers for happiness. I am trained to use quantitative and non-quantitative expertise in creative ways to improve processes and products while making jobs easier and more efficient.
If you are ready to learn even more about pursuing a career in the field of industrial engineering, please contact the schools in your area to receive more information. We recommend comparing multiple programs to be sure you choose the best one for you.

Tuesday, February 4, 2020

Different types of Engineering career list

The field of engineering is expanding quickly. It requires skilled workers to apply principles-based in scientific, mathematical, technological, and social methodologies to design, develop, construct, and operate structures, devices, systems, and processes. Skilled engineers find numerous opportunities for rewarding employment in many industries.Competition for engineering jobs can be quite competitive, and as with most careers, candidates who complete formal education, gain work experience and display skill are often preferred over individuals with less education, experience, and skill. Here are the Top 10 Highest Paying Jobs Engineering career list

1. Petroleum Engineers

Petroleum Engineers are responsible for finding the most efficient and profitable means of extracting oil and gas from rock formations far below the earth. They design and develop ways to use water, chemicals, gases, and steam to force oil out of reserves, perform research, develop drill plans, and ensure proper maintenance and function of oil and gas extraction equipment. Petroleum Engineers also develop means of connecting oil and gas deposits to new or existing wells. Petroleum Engineers must complete bachelor's or master’s degree programs in petroleum engineering and also gain work experience before entering the field. 

2. Nuclear Engineers

Nuclear Engineers research nuclear energy and radiation for industrial and medical use. They design and create the processes, instrumentation, equipment, and systems that contain nuclear materials used in multiple industries, from spacecraft to medical imaging devices. They also maintain and monitor nuclear operations within facilities to ensure safety, identify violations of nuclear regulations and laws, give instructions regarding the handling and disposal of nuclear waste, and develop preventative measures for nuclear accidents. Nuclear Engineers also respond to plant shutdowns and other emergencies when they occur. Most Nuclear Engineers are required to possess a minimum of a bachelor degree 

3. Aerospace Engineers

Aerospace Engineers design, develop, and test aircraft, satellites, spacecraft, missiles, and other air or spacecraft products for the military, commercial, or private use. They research and determine the safety of proposed aircraft projects and parts. Aerospace Engineers also evaluate products to ensure they meet customer requirements, engineering specifications, and quality standards. Aerospace Engineers identify and develop solutions for malfunctioning or damaged aircraft, spacecraft, and parts. Aerospace Engineers may begin their careers within entry level positions upon earning a bachelor degree, though many employers prefer candidates with the combination of a degree and work experience. 

4. Software Engineers

Software Engineers blend computer science, mathematics, and engineering to design, develop, test, and maintain software or computer systems. They focus on user needs and write computer programs. Many work closely with teams of other computer science and engineering experts to secure, install, or develop advanced computer systems and software. Software Engineers also resolve any operational, security, or function issues with software, computer systems, and internal computer networks. Software Engineers generally must complete a minimum of a bachelor degree based in computer science, software, mathematics, or engineering as well as experience working with computer systems and applications. In addition, due to the constant changes within the industry, Software Engineers must continue education throughout the course of their careers.

5. Engineering Managers

Engineering Managers supervise teams of engineers within electrical, mechanical, civil, or industrial engineering fields. They administer, direct, and coordinate the research, design, financing, and development of products, hardware, equipment, and devices. They also oversee project design, manufacturing processes, productivity, and marketing analysis to lead projects for industrial, civil, and environmental products and services. Engineering Managers also create the specifications, proposals, budgets, and policies between engineering teams, clients, and contractors while adhering to regulatory laws and predicting the impact of the product. Individuals must complete studies within a bachelor or master’s degree program, gain work experience as an engineer, and obtain state licensing in order to qualify for employment as an Engineering Managers. 

6. Chemical Engineers

Chemical Engineers research, design, and troubleshoot the equipment and production processes for large scale manufacturing. They apply the engineering principles of physics, chemistry, and biology to develop, identify, and evaluate the safest and most efficient means of producing food, drugs, chemicals, fuel, and other materials. Chemical Engineers also research and determine the costs of manufacturing processes as well as the affects they have on the environment without compromising quality and safety. Chemical Engineers must complete studies within a bachelor level chemical or biomolecular engineering 

7. Electrical Engineers

Electrical Engineers devise new and improved electronics, components, and equipment. They also test and resolve problems with existing electronics. Electrical Engineers work with a large number of products and systems from lighting and wiring within structures to cars, robots, generators, and navigation systems to ensure performance and resolve issues. They also design and assemble new products, test products to ensure safety, and oversee the installation of components. Many create technical drawings and specifications indicating instructions and proper operation. Training to become an Electrical Engineer requires an associates or bachelor’s degree in electrical engineering. 

8. Biomedical Engineers

Biomedical Engineers focus upon improving the quality, efficiency, safety, and effectiveness of medical systems and products. They analyze, design, and resolve problems with biology and medicine. Biomedical Engineers create artificial organs, devices, and machines used to replace body parts and diagnose medical issues. They also conduct research to advance medicine, develop methods to assure product quality, and test drug therapies using computer simulations. Biomedical Engineers typically complete a bachelor or master’s degree in biomedical engineering 

9. Materials Engineers

Materials engineers develop, design, process, and test materials to create new materials and products. Materials Engineers use metals, composites, semiconductors, plastics, and other substances which meet requirements based upon mechanical, chemical, and electrical standards. They also research, test, create, and evaluate the economic factors and standards involved in designing new products and developing materials processes. Additionally, Materials Engineers provide administrative and supervisory support by overseeing groups of technologists, scientists, technicians, and other engineers, providing proposals, completing reports, creating budgets, evaluating new projects, and preparing budgets. Most specialize in ceramic, composites, metallurgical, plastics, or semiconductor processing engineering fields. Materials Engineers often complete studies within bachelors or masters level materials science or materials engineering programs to qualify for employment. 

10. Environmental Engineers

Environmental Engineers apply and develop solutions to a number of environmental issues and problems by using the principles of engineering, biology, chemistry, and soil science. Environmental Engineers address global issues, like climate change, sustainability, and drinking water safety, as well as public health issues and means of controlling pollution. Environmental Engineers develop means of improving environmental protection, waste disposal, and recycling programs. They also create, evaluate, and update reports based on environmental investigations and environmental improvement programs. Environmental Engineers also oversee the standard operating procedures for legal plans, legal actions, environmental remediation programs, and permits. Additionally, they inspect industrial and municipal facilities to be certain environmental regulations and laws are followed as well as respond to hazardous waste and contaminated sites. Training to become an Environmental Engineer requires a bachelors degree based in environmental engineering and work experience. Some candidates may complete studies within a related field like civil, chemical, or mechanical engineering and gain additional on the job training. 

Real Life Example of a Structural Engineer

John Shmerykowsky , an experienced structural engineer, has witnessed first-hand the rewards of the career as well as the technological tran...