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Career and Education Opportunities for Biomedical Engineers in Columbia, Maryland

Biomedical engineer career and educational opportunities abound in Columbia, Maryland. Currently, 500 people work as biomedical engineers in Maryland. This is expected to grow by 16% to 580 people by 2016. This is not quite as good as the nation as a whole, where employment opportunities for biomedical engineers are expected to grow by about 72.0%. In general, biomedical engineers apply knowledge of engineering, biology, and biomechanical principles to the design, development, and evaluation of biological and health systems and products, such as artificial organs, prostheses, instrumentation, medical information systems, and health management and care delivery systems.

A person working as a biomedical engineer can expect to earn about $40 per hour or $83,340 yearly on average in Maryland and about $37 hourly or $77,400 annually on average in the U.S. as a whole. Biomedical engineers earn less than people working in the category of Engineering generally in Maryland and less than people in the Engineering category nationally. Biomedical engineers work in a variety of jobs, including: orthopedic designer, biomechanical engineer, and supplier quality engineer .

The Columbia area is home to 109 schools of higher education, including four within twenty-five miles of Columbia where you can get a degree as a biomedical engineer. The most common level of education for biomedical engineers is a Bachelor's degree. You can expect to spend about four years training to become a biomedical engineer if you already have a high school diploma.

CAREER DESCRIPTION: Biomedical Engineer

Biomedical Engineer video from the State of New Jersey Dept. of Labor and Workforce Development

In general, biomedical engineers apply knowledge of engineering, biology, and biomechanical principles to the design, development, and evaluation of biological and health systems and products, such as artificial organs, prostheses, instrumentation, medical information systems, and health management and care delivery systems.

Every day, biomedical engineers are expected to be able to think through problems and come up with general rules. They need to articulate ideas and problems. It is also important that they listen to and understand others in meetings.

It is important for biomedical engineers to advise hospital administrators on the planning and use of medical equipment. They are often called upon to set up and/or repair biomedical equipment. They also advise and help in the application of instrumentation in clinical environments. They are sometimes expected to layout and deliver technology to help people with disabilities. Somewhat less frequently, biomedical engineers are also expected to teach biomedical engineering or disseminate knowledge about field through writing or consulting.

Biomedical engineers sometimes are asked to layout and develop medical diagnostic and clinical instrumentation, equipment, and procedures, using the principles of engineering and biobehavioral sciences. They also have to be able to design models or computer simulations of human biobehavioral systems to obtain data for measuring or controlling life processes and research new materials to be used for products. And finally, they sometimes have to conduct research, along with life scientists and medical scientists, on the engineering aspects of the biological systems of humans and animals.

Like many other jobs, biomedical engineers must be reliable and be thorough and dependable.

Similar jobs with educational opportunities in Columbia include:

  • Aerodynamics Engineer. Perform a variety of engineering work in designing, constructing, and testing aircraft, missiles, and spacecraft. May conduct basic and applied research to evaluate adaptability of materials and equipment to aircraft design and manufacture. May recommend improvements in testing equipment and techniques.
  • Agricultural Engineer. Apply knowledge of engineering technology and biological science to agricultural problems concerned with power and machinery, electrification, structures, soil and water conservation, and processing of agricultural products.
  • Chemical Engineer. Design chemical plant equipment and devise processes for manufacturing chemicals and products, such as gasoline, synthetic rubber, and pulp, by applying principles and technology of chemistry, physics, and engineering.
  • Civil Engineer. Perform engineering duties in planning, designing, and overseeing construction and maintenance of building structures, and facilities, such as roads, railroads, airports, bridges, harbors, channels, dams, irrigation projects, pipelines, power plants, water and sewage systems, and waste disposal units. Includes architectural, structural, and geo-technical engineers.
  • Computer Engineer. Research, design, and test computer or computer-related equipment for commercial, industrial, or scientific use. May supervise the manufacturing and installation of computer or computer-related equipment and components.
  • Electrical Engineer. Design, develop, or supervise the manufacturing and installation of electrical equipment, components, or systems for commercial, industrial, or scientific use.
  • Electronics Engineer. Research, design, and test electronic components and systems for commercial, industrial, or scientific use utilizing knowledge of electronic theory and materials properties. Design electronic circuits and components for use in fields such as telecommunications, aerospace guidance and propulsion control, acoustics, or instruments and controls.
  • Fire Prevention Research Engineer. Research causes of fires, determine fire protection methods, and design or recommend materials or equipment such as structural components or fire-detection equipment to assist organizations in safeguarding life and property against fire, explosion, and related hazards.
  • Health, Safety, and Environment Manager. Plan, implement, and coordinate safety programs, requiring application of engineering principles and technology, to prevent or correct unsafe environmental working conditions.
  • Industrial Engineer. Design, develop, and evaluate integrated systems for managing industrial production processes including human work factors, quality control, inventory control, logistics and material flow, cost analysis, and production coordination.
  • Manufacturing Engineer. Apply knowledge of materials and engineering theory and methods to design, integrate, and improve manufacturing systems or related processes. May work with commercial or industrial designers to refine product designs to increase producibility and decrease costs.
  • Materials Engineer. Evaluate materials and develop machinery and processes to manufacture materials for use in products that must meet specialized design and performance specifications. Develop new uses for known materials. Includes those working with composite materials or specializing in one type of material, such as graphite, metal and metal alloys, ceramics and glass, plastics and polymers, and naturally occurring materials.
  • Mechanical Engineer. Perform engineering duties in planning and designing tools, engines, and other mechanically functioning equipment. Oversee installation, operation, and repair of such equipment as centralized heat, gas, and steam systems.
  • Product Safety Engineer. Develop and conduct tests to evaluate product safety levels and recommend measures to reduce or eliminate hazards.

EDUCATIONAL OPPORTUNITIES: Biomedical Engineer Training

Johns Hopkins University - Baltimore, MD

Johns Hopkins University, 3400 N Charles St, Mason Hall, Baltimore, MD 21218-2688. Johns Hopkins University is a large university located in Baltimore, Maryland. It is a private not-for-profit school with primarily 4-year or above programs. It has 20,049 students and an admission rate of 26%. Johns Hopkins University has bachelor's degree, master's degree, and doctor's degree programs in Biomedical/Medical Engineering which graduated seventy-two, thirty-five, and nineteen students respectively in 2008.

Catholic University of America - Washington, DC

Catholic University of America, 620 Michigan Avenue, NE, Washington, DC 20064. Catholic University of America is a medium sized university located in Washington, District of Columbia. It is a private not-for-profit school with primarily 4-year or above programs. It has 6,705 students and an admission rate of 81%. Catholic University of America has bachelor's degree, master's degree, and doctor's degree programs in Biomedical/Medical Engineering which graduated one, one, and one students respectively in 2008.

George Washington University - Washington, DC

George Washington University, 2121 I Street, NW, Washington, DC 20052. George Washington University is a large university located in Washington, District of Columbia. It is a private not-for-profit school with primarily 4-year or above programs. It has 25,027 students and an admission rate of 37%. George Washington University has a bachelor's degree program in Biomedical/Medical Engineering which graduated sixteen students in 2008.

University of Maryland-College Park - College Park, MD

University of Maryland-College Park, , College Park, MD 20742. University of Maryland-College Park is a large university located in College Park, Maryland. It is a public school with primarily 4-year or above programs. It has 37,000 students and an admission rate of 39%. University of Maryland-College Park has a master's degree and a doctor's degree program in Biomedical/Medical Engineering which graduated one and two students respectively in 2008.

CERTIFICATIONS

Geometric Dimensioning & Tolerancing Professional - Technologist: ASME GDTP Certification provides the means to recognize proficiency in the understanding and application of the geometric dimensioning and tolerancing (GD&T) principles expressed in the ASME Y14.

For more information, see the American Society of Mechanical Engineers International website.

Certified Water Technologist: The Certified Water Technologist (CWT) program represents the highest professional credential in the industrial and commercial water treatment field.

For more information, see the Association of Water Technologies website.

LICENSES

BIOMEDICAL ENGINEER

Licensing agency: Department of Labor, Licensing and Regulation
Address: Board for Professional Engineer, 500 North Calvert Street, Baltimore, MD 21201

Phone: (410) 230-6260
Website: Department of Labor, Licensing and Regulation Board for Professional Engineer

LOCATION INFORMATION: Columbia, Maryland

Columbia, Maryland
Columbia, Maryland photo by Jeff Kubina

Columbia is located in Howard County, Maryland. It has a population of over 96,421. The cost of living index in Columbia, 100, is near the national average.

The three most popular industries for women in Columbia are educational services, health care, and professional, scientific, and technical services. For men, it is professional, scientific, and technical services, public administration, and educational services. The average travel time to work is about 30 minutes. More than 59.0% of Columbia residents have a bachelor's degree, which is higher than the state average. The percentage of residents with a graduate degree, 28.7%, is higher than the state average.

The percentage of Columbia residents that are affiliated with a religious congregation, 49.3%, is less than the national average but more than the state average. Abiding Savior Lutheran Church, Atholton Seventh Day Adventist Church and Long Reach Interfaith Center are all churches located in Columbia. The most prominent religious groups are the Catholic Church, the United Methodist Church and the Southern Baptist Convention.

Columbia is home to the Symphony Woods Office Center and the Rivers Corporate Park as well as Middle Patuxent Environmental Area and Clarksville Environmental Area. Shopping centers in the area include Governor Century Plaza Shopping Center, Atholton Shopping Center and Owen Brown Village Shopping Center. Visitors to Columbia can choose from PFMG, Courtyard by Marriott and Hilton Inn Columbia for temporary stays in the area.