Biomedical Engineer 3D Printing information
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$72.5K is the 25th percentile. Wages below this are outliers.
$68K - $77K
3% of jobs
The median wage is $96.5K / yr.
$95K - $104K
19% of jobs
$111.7K is the 75th percentile. Wages above this are outliers.
$104K - $113K
11% of jobs
How much do biomedical engineer 3d printing jobs pay per year?
As of Aug 17, 2026, the average yearly pay for biomedical engineer 3d printing in the United States is $94,807.00, according to ZipRecruiter salary data. Most workers in this role earn between $74,500.00 and $116,000.00 per year, depending on experience, location, and employer.
A Biomedical Engineer specializing in 3D printing uses advanced additive manufacturing technologies to design and create medical devices, prosthetics, implants, and tissue scaffolds. They work closely with healthcare professionals to develop customized solutions that improve patient outcomes. Their responsibilities often include computer-aided design (CAD), selecting appropriate biomaterials, and ensuring that printed products meet regulatory and safety standards. This field requires a combination of engineering, biology, and material science expertise.
To thrive as a Biomedical Engineer specializing in 3D printing, you need a solid background in biomedical engineering principles, CAD modeling, and materials science, typically supported by a relevant engineering degree. Proficiency with 3D printing technologies, such as FDM, SLA, and SLS, as well as familiarity with software like SolidWorks and experience with regulatory standards, is often required. Strong problem-solving, creativity, and effective communication skills distinguish top performers in this role. These competencies are crucial for designing innovative medical devices, ensuring product safety, and collaborating across multidisciplinary teams to advance healthcare solutions.
Biomedical Engineers in 3D Printing often work closely with clinicians and researchers to understand clinical needs, gather anatomical data, and refine prototypes. This collaboration ensures that the custom devices or models meet both medical requirements and regulatory standards. Regular interdisciplinary meetings, feedback sessions, and iterative design reviews are common, fostering a dynamic environment where engineering solutions are aligned with real-world healthcare challenges. Effective communication and teamwork are crucial in translating medical concepts into functional 3D-printed products.
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