About The Position

The Department of Radiation Oncology at the University of Maryland School of Medicine (UMSOM) is seeking a highly motivated postdoctoral fellow for a full-time, three-year appointment. The fellow will contribute to an NIH-funded project developing a non-invasive, MR-compatible hyperthermia system for brain tumor treatment. The fellow’s primary focus will be the development of high-resolution virtual anatomical models of the human head for patient-specific electromagnetic and thermal simulations. This work will include detailed tissue segmentation from medical images, integration of automatic and semi-automatic segmentation algorithms, refinement of anatomical geometries, and optimization of surface and volumetric meshes. The fellow will also develop and evaluate multiphysics computational models coupling microwave electromagnetic energy deposition with bioheat transfer to predict specific absorption rate and temperature distributions in the brain and surrounding tissues. The fellow will also have opportunities to shadow clinical hyperthermia treatments across deep, superficial, and interstitial modalities, providing direct exposure to quality assurance, treatment planning, treatment delivery, thermometry, and clinical workflow.

Requirements

  • PhD in medical physics, biomedical engineering, electrical engineering, mechanical engineering, computer science, applied physics, applied mathematics, or a closely related field.
  • At least one year of direct research experience in medical-image segmentation and three-dimensional anatomical-model development.
  • Experience processing CT, MRI, or comparable volumetric medical-imaging datasets.
  • Demonstrated ability to conduct independent quantitative research and analyze complex computational results.
  • Strong scientific writing, communication, and organizational skills.
  • A record of peer-reviewed publications or other evidence of research productivity.

Nice To Haves

  • Experience with Synopsys Simpleware or comparable software for image segmentation, anatomical-model generation, and mesh creation.
  • Experience with COMSOL Multiphysics, Ansys, or comparable finite-element or multiphysics simulation software.
  • Knowledge of electromagnetic modeling, radiofrequency or microwave propagation, heat transfer, or bioheat-transfer modeling.
  • Experience with finite-element meshing, geometry cleanup, material-property assignment, and mesh-quality assessment.
  • Experience automating image-processing or simulation workflows using Python, MATLAB, C++, or similar programming languages.
  • Familiarity with machine-learning or deep-learning methods for medical-image segmentation.
  • Experience with DICOM data, medical-image registration, high-performance computing, or GPU-based computation.
  • Previous experience in medical physics, thermal therapy, hyperthermia, treatment planning, or medical-device development.

Responsibilities

  • Develop anatomically detailed, high-resolution virtual models of the human head from CT and MRI datasets.
  • Perform manual, semi-automatic, and automatic segmentation of tissues relevant to electromagnetic and thermal modeling.
  • Integrate and evaluate automatic segmentation algorithms within a reproducible anatomical-modeling workflow.
  • Refine segmented geometries and optimize surface and volumetric mesh generation for anatomical accuracy, numerical stability, and computational efficiency.
  • Develop multiphysics models coupling electromagnetic field simulations, microwave power deposition, tissue perfusion, and bioheat transfer.
  • Perform mesh-convergence, sensitivity, uncertainty, and model-verification analyses.
  • Compare computational predictions with phantom, preclinical, and other experimental measurements.
  • Analyze simulation results and prepare manuscripts, conference presentations, and technical reports.
  • Collaborate with medical physicists, engineers, neurosurgeons, imaging scientists, and industry partners.
  • Shadow clinical hyperthermia treatments—including treatment planning, patient setup, thermal monitoring, and quality assurance—to understand the clinical constraints and translational requirements that should inform model development. This experience will be observational and educational rather than an independent clinical role.

Stand Out From the Crowd

Upload your resume and get instant feedback on how well it matches this job.

Upload and Match Resume

What This Job Offers

Job Type

Full-time

Career Level

Entry Level

Education Level

Ph.D. or professional degree

© 2026 Teal Labs, Inc
Privacy PolicyTerms of Service