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Graduate Biomedical Engineer Jobs in Pennsylvania

$48K - $65K/yr

The individual will be expected to help guide graduate and undergraduate students in their research, participate in the preparation and submission of manuscripts and proposals, present results at ...

$19.25 - $25/hr

... Biomedical Informatics, and related life science or engineering graduate programs, especially those with experience building reproducible computational workflows for high-throughput molecular ...

Academic Advisor

Pittsburgh, PA · On-site

$40K - $50K/yr

... biomedical engineering, chemistry, data science with a life science focus, environmental science, clinucal lab science, neuroscience, psychology, post-graduate allied health, or science education.

Showing results 21-40

Graduate Biomedical Engineer information

See Pennsylvania salary details

$41.1K

$95K

$140.3K

How much do graduate biomedical engineer jobs pay per year?

As of Aug 10, 2026, the average yearly pay for graduate biomedical engineer in Pennsylvania is $95,035.00, according to ZipRecruiter salary data. Most workers in this role earn between $74,700.00 and $116,300.00 per year, depending on experience, location, and employer.

What is the difference between Graduate Biomedical Engineer vs Biomedical Technician?

AspectGraduate Biomedical EngineerBiomedical Technician
Required CredentialsBachelor's degree in biomedical engineering or related field; some roles may require internshipsAssociate's or bachelor's degree in biomedical technology or related field; certification often preferred
Work EnvironmentDesign, development, and testing of medical devices; research settings; labsMaintenance, repair, and calibration of medical equipment in hospitals or clinics
Employer & Industry UsageHospitals, medical device companies, research institutionsHospitals, clinics, biomedical service companies

Graduate Biomedical Engineers focus on designing and developing medical devices and systems, often working in research or development environments. Biomedical Technicians primarily maintain and repair medical equipment in clinical settings. Both roles require technical knowledge, but differ in responsibilities and work settings.

What is a graduate biomedical engineering degree?

A graduate biomedical engineering degree is usually a master's degree that focuses on the research and design of medical devices and equipment, as well as programming the software necessary for such devices to work. Biomedical engineers help develop artificial organs, prosthetic body parts, and various other devices as needed. Many also repair and troubleshoot such devices. Depending on the type of work you do as a graduate biomedical engineer, you may work closely with doctors and other direct healthcare providers to help them implant and configure medical devices in particularly complex cases. Some people continue on to get a doctorate in this field. Doctors of biomedical engineering often focus more on cutting-edge research and highly experimental devices.

What are some typical projects or tasks a graduate biomedical engineer might work on during their first year in the role?

As a Graduate Biomedical Engineer, you can expect to be involved in a variety of hands-on projects such as assisting with the design and testing of medical devices, supporting equipment maintenance in clinical settings, or participating in research and development initiatives. You may also help analyze data from clinical trials, collaborate with healthcare professionals to understand user needs, and ensure compliance with industry regulations. This early-career experience provides valuable exposure to multidisciplinary teamwork and the practical application of engineering principles in healthcare environments.

What are the key skills and qualifications needed to thrive as a graduate biomedical engineer, and why are they important?

To thrive as a Graduate Biomedical Engineer, you need a solid background in biomedical engineering principles, mathematics, and life sciences, typically gained through a relevant engineering degree. Familiarity with CAD software, programming languages (such as MATLAB or Python), and laboratory instrumentation is essential, along with any internships or work placements. Strong problem-solving skills, teamwork, and effective communication set outstanding candidates apart in this multidisciplinary field. These skills and qualities are critical for developing innovative medical technologies and ensuring successful collaboration between engineers, clinicians, and other stakeholders.

What does a graduate biomedical engineer do?

A Graduate Biomedical Engineer applies engineering principles to the medical field, working on the design, development, and maintenance of medical devices and equipment. They often assist in research, testing, and implementing new technologies to improve healthcare outcomes. Their responsibilities may include collaborating with clinicians, troubleshooting technical issues, and ensuring that medical devices comply with safety and regulatory standards. Early in their careers, they may also receive on-the-job training and mentorship to build expertise.
What cities in Pennsylvania are hiring for Graduate Biomedical Engineer jobs? Cities in Pennsylvania with the most Graduate Biomedical Engineer job openings:
Infographic showing various Graduate Biomedical Engineer job openings in Pennsylvania as of August 2026, with employment types broken down into 2% As Needed, 71% Full Time, 24% Part Time, 2% Contract, and 1% Nights. Highlights an 97% Physical, 1% Hybrid, and 2% Remote job distribution, with an average salary of $95,035 per year, or $45.7 per hour.

Post Doctoral Associate-Kozai Lab

University of Pittsburgh

Pittsburgh, PA

$47K - $64K/yr

Full-time

Re-posted 29 days ago


Job description

The Department of Bioengineering is seeking a Postdoctoral Associate in the Kozai lab. Incumbent will be responsible for conducting research on implantable neural interfaces, focusing on photostimulation, intracortical microstimulation (ICMS), and neural imaging. This role will involve designing, optimizing, and executing experiments that explore novel photostimulation technologies, particularly in the context of neural prosthetics and artificial sensory perception. The candidate will develop and characterize Wireless Axon stimulators, evaluating their spatial selectivity, stability, and long-term functionality within neural tissue.

In addition, the postdoctoral associate will employ in vivo two-photon microscopy and advanced imaging techniques to analyze the activation of different neuronal subtypes in response to stimulation. They will use molecular tools such as GCaMP6 and tdTomato to visualize and quantify neuronal and glial activity. Data collection, signal processing, and statistical analysis will be critical components of the role, requiring proficiency in MATLAB, Python, and ImageJ/Fiji for image and signal analysis.

The candidate will be expected to contribute to manuscript preparation, grant writing, and conference presentations to disseminate research findings. Collaboration with interdisciplinary teams, including neuroscientists, engineers, and clinicians, will be essential for advancing neuroengineering solutions. Additionally, the associate will mentor graduate and undergraduate students, providing technical expertise and guidance in experimental design and data analysis.

Job Requirements (majoring in BioE or a STEM field, etc.):

  • Ph.D. in Bioengineering, Neuroscience, Neurobiology, Biomedical Engineering, Molecular/Cellular Biology, Biochemistry, Chemistry, Electrical Engineering, Computer Science, Mechanical Engineering, Chemical Engineering, Physics, Optics, Material Science, or Mathematics.
  • Expertise in in vivo multiphoton microscopy, neurostimulation, or neuromodulation, particularly in the visual cortex.
  • Experience with electrochemistry, confocal microscopy, immunohistochemistry, and scanning electron microscopy (SEM) preferred.
  • Proficiency in signal processing and computational analysis using MATLAB, Python, or other relevant software.
  • Knowledge of neurobiology related to brain injuries and neurodegeneration (e.g., Multiple Sclerosis, Alzheimer's Disease, stroke) is advantageous.
  • Strong analytical and problem-solving skills, with the ability to work independently and collaboratively in an interdisciplinary research environment.
  • Excellent scientific writing and communication skills, with experience in manuscript preparation and conference presentations.
  • Experience with designing and conducting in vivo electrophysiology or optogenetics experiments is a plus.
  • Ability to mentor graduate and undergraduate students in research techniques and data analysis.