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Computational Physicist Jobs in Minnesota (NOW HIRING)

This role requires deep expertise in plasma physics, plasma-material interactions, plasma source design, and process development. The engineer will leverage both computational modeling and ...

Process Engineer III

Chaska, MN · On-site

$78K - $110K/yr

This role requires deep expertise in plasma physics, plasma-material interactions, plasma source design, and process development. The engineer will leverage both computational modeling and ...

Our Physics & Astronomy Department: * Who we are: We are eight faculty members and four staff ... computational research suite, an instrument shop, and a makerspace. Goodsell Observatory has both ...

Ability to explain modeling techniques for physical systems, approximation methods, and stability analysis while preparing students for engineering, physics, finance, and computational science ...

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Computational Physicist information

See Minnesota salary details

$139.1K

$164.8K

$187.9K

How much do computational physicist jobs pay per year?

As of Jul 28, 2026, the average yearly pay for computational physicist in Minnesota is $164,833.00, according to ZipRecruiter salary data. Most workers in this role earn between $151,800.00 and $177,700.00 per year, depending on experience, location, and employer.

What Does a Computational Physicist Do?

A computational physicist applies numerical analysis to solve problems or support theories in physics. In this career, you use knowledge from numerous disciplines, including physics, statistics, mathematics, and computer science, to test a theory. You use algorithms and other methodological tools to crunch large datasets using powerful computers, which helps in solving differential equations and other statistical problems. This can include Monte Carlo calculations and eigenvalue problems. Some people consider computational physics a branch of theoretical physics or its own discipline with specific duties and responsibilities.

What is the difference between Computational Physicist vs Data Scientist?

AspectComputational PhysicistData Scientist
Required CredentialsPhysics degree, often PhD, strong math and programming skillsStatistics, computer science, or related degree, often with a master's or PhD
Work EnvironmentResearch labs, academia, government agencies, scientific institutionsTech companies, finance, healthcare, consulting firms
Industry UsageScientific research, simulations, modeling physical systemsData analysis, predictive modeling, business insights

While both roles require strong programming and analytical skills, Computational Physicists focus on physical systems and scientific research, whereas Data Scientists analyze data to inform business decisions. The choice depends on your interest in scientific research versus data-driven applications.

What are some typical challenges computational physicists face when working on collaborative research projects?

Computational physicists often collaborate with experimentalists, engineers, and other researchers, which can present challenges such as bridging communication gaps between disciplines and integrating diverse data formats or methodologies. Coordinating project timelines to ensure that simulations align with experimental milestones is also common. Additionally, managing large datasets and ensuring reproducibility of results across different computing environments can require careful planning and documentation. Effective teamwork and adaptability are essential to overcome these hurdles and drive successful research outcomes.

What are the key skills and qualifications needed to thrive as a Computational Physicist, and why are they important?

To thrive as a Computational Physicist, you need a strong background in physics, mathematics, and computer science, typically supported by at least a master's or Ph.D. in physics or a related field. Proficiency in programming languages such as Python, C++, and MATLAB, as well as experience with simulation software and high-performance computing systems, is essential. Strong analytical thinking, problem-solving abilities, and effective teamwork skills help you tackle complex scientific challenges and collaborate on interdisciplinary projects. These skills are crucial for developing accurate models, efficiently solving intricate problems, and advancing scientific research through computational methods.

What is a computational physicist?

A computational physicist is a scientist who uses computer simulations, numerical analysis, and algorithms to solve complex physical problems that are difficult or impossible to address analytically. They work in fields like condensed matter physics, astrophysics, and materials science, modeling phenomena such as atomic interactions or galaxy formation. Their work often involves writing code, analyzing large datasets, and collaborating with experimental and theoretical physicists. Computational physicists play a key role in advancing scientific knowledge by providing insights where traditional methods fall short.
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Infographic showing various Computational Physicist job openings in Minnesota as of July 2026, with employment types broken down into 2% Internship, 71% Full Time, 24% Part Time, 2% Temporary, and 1% Contract. Highlights an 71% Physical, 1% Hybrid, and 28% Remote job distribution, with an average salary of $164,833 per year, or $79.2 per hour.
Proton Faculty Medical Physicist in Radiation Oncology

Proton Faculty Medical Physicist in Radiation Oncology

Mayo Clinic

Rochester, MN • On-site

Full-time

Medical, Dental, Vision, Retirement

Posted 3 days ago


Mayo Clinic rating

7.8

Company rating: 7.8 out of 10

Based on 692 frontline employees who took The Breakroom Quiz

105th of 890 rated healthcare providers


Job description


Mayo Clinic in Rochester, Minnesota, is currently recruiting a board-certified proton faculty medical physicist for the Division of Medical Physics within the Department of Radiation Oncology.
We are seeking applicants with a track record that demonstrates academic and clinical excellence, including clinical practice and project participation, collaboration, and leadership, as well as research productivity and commitment to educational service. The incumbent must have a broad skill set that includes spot scanning proton beam therapy. A proven track record of successfully leading groups or projects is highly desirable. Successful candidates will have responsibility for and participate in all aspects of procedure and QA development and clinical coverage for proton therapy. The candidate will be expected to participate in educational activities and lead and publish peer reviewed research.
The applicant will also be expected to submit a brief (<1000 words) research proposal. The research proposal should summarize the candidate's research interests, goals, qualifications, potential for funding, and vision for synergistic collaboration with the other members of the Department of Radiation Oncology. Preference will be given to those candidates who have interests and qualifications consistent with key clinical, research and innovation initiatives including proton adaptive therapy and proton treatment planning.
Facility and Equipment: The Radiation Oncology Medical Physics Division currently has 23 faculty medical physicists, 43 staff clinical medical physicists, 9 residents/fellows, 5 medical physicist assistants, along with several engineers and IT support. The Division is a seasoned and cohesive team responsible for all aspects of therapy medical physics in support of clinical practice, education and research in radiation oncology in Rochester and at 5 satellite facilities. The Medical Physics Division is noted for research in image guided radiation therapy, clinical application of advanced imaging modalities, radiomics, quality and safety, treatment delivery dosimetry and verification, development of novel treatment technologies, advances in brachytherapy, Monte Carlo techniques, particle therapy treatment planning and beam delivery, radiobiology and outcomes-informatics.
Equipment in our Department includes 15 Varian Truebeam/Ethos/Edge linacs including three with Hypersight, a Gamma Knife ICON, GE and Siemens CT simulators with wide bore and 4D capability, a 3T MRI, VariSource and Bravos HDR afterloaders, Varian Brachyvision for HDR planning, Variseed for LDR planning, XStrahl Orthovoltage, IntraOp Mobetron, Eclipse, ARIA and a full complement of dosimetry and detector systems for photon, proton and brachytherapy. Photon treatment procedures include all conventional radiation therapy modalities plus special procedures that include IORT, TBI, TSET, HDR, SRS, SBRT, SFRT, BH, Ethos online adaptive, Direct-to-unit, Orthovoltage, LDR and IVBT treating over 5000 patients per year with incremental photon vaults planned to accommodate practice growth. The proton center contains a Hitachi synchrotron-based 4 half-gantry plus single fixed beam treatment system, treating over 1200 patients per year within an approximately 100,000 square foot facility adjacent to our photon radiation oncology department. The proton beam is 100% spot scanning with orthogonal kV-based imaging, Siemens CT-on-rails and VisionRT for localization and verification. A 2 full-gantry proton expansion project with a second accelerator is underway.
Mayo Clinic is an integrated, multidisciplinary academic medical center and supports a vibrant and diverse research enterprise. Mayo Clinic strives to remain a world leader for advanced quantitative approaches, including AI and machine learning, and novel insights from the diverse landscape of health care technology and data. The Department of Radiation Oncology leads or contributes to national efforts in basic, translational, clinical, and population sciences. Furthermore, Radiation Oncology has a rich tradition of collaborating with other Mayo Clinic departments, health and data scientists, biomedical engineering programs, and animal and cell laboratories. The unique resources available to faculty for research and innovation include a clinical data warehouse containing over twenty years of EHR data for over 14 million patients, a vibrant radiology practice with state-of-the-art imaging modalities, and reference labs including pathology, genomic data, and drug discovery pipelines. Advanced GPU and CPU based computational infrastructure exists for research, development, and clinical applications.
Qualifications
Minimum qualifications include a Ph.D. and board certification; board eligible Ph.D. graduates from a CAMPEP accredited residency program with experience in spot-scanning proton/particle therapy as well as proton adaptive therapy or proton treatment planning will also be considered.
About Us
Why Mayo Clinic
Mayo Clinic is top-ranked in more specialties than any other care provider according to U.S. News & World Report. As we work together to put the needs of the patient first, we are also dedicated to our employees, investing in competitive compensation and comprehensive benefit plans - to take care of you and your family, now and in the future. And with continuing education and advancement opportunities at every turn, you can build a long, successful career with Mayo Clinic.
Benefits Highlights
  • Medical: Multiple plan options.
  • Dental: Delta Dental or reimbursement account for flexible coverage.
  • Vision: Affordable plan with national network.
  • Pre-Tax Savings: HSA and FSAs for eligible expenses.
  • Retirement: Competitive retirement package to secure your future.

About the Team
Just as our reputation has spread beyond our Minnesota roots, so have our locations. Today, our employees are located at our three major campuses in Phoenix/Scottsdale, Arizona, Jacksonville, Florida, Rochester, Minnesota, and at Mayo Clinic Health System campuses throughout Midwestern communities, and at our international locations. Each Mayo Clinic location is a special place where our employees thrive in both their work and personal lives. Learn more about what each unique Mayo Clinic campus has to offer, and where your best fit is.
Equal Opportunity
All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, gender identity, sexual orientation, national origin, protected veteran status or disability status. Learn more about the "EOE is the Law". Mayo Clinic participates in E-Verify and may provide the Social Security Administration and, if necessary, the Department of Homeland Security with information from each new employee's Form I-9 to confirm work authorization.

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About Mayo Clinic

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Mayo Clinic is the largest integrated, not-for-profit medical group practice in the world. We're building the future, one where the best possible care is available to everyone — and more people can heal at home. Our relentless research turns into earlier diagnoses and new cures. That's how we inspire hope in those who need it most. At Mayo Clinic, experts work together to solve the most challenging unmet needs of patients. Our history of innovation dates back almost 150 years, when brothers Will and Charlie Mayo pioneered an integrated, team-based approach to medicine. Today, that trailblazing spirit drives innovations like Mayo Clinic Platform — which powers new technologies to change how care is delivered to all.

Industry

Hospitals

Company size

10,000+ Employees

Headquarters location

Rochester, MN, US

Year founded

1919