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Postdoctoral Position Computational Biophysics Jobs in Virginia

They are seeking multiple postdoctoral associates in Artificial Intelligence focused on ... Computational Biology, Bioinformatics, Statistics, Mathematics, Biophysics, Physics, Chemistry ...

Postdoctoral Associate Apply now Back to search results Job no: 536240 Work type: Research Faculty ... Computational Biology, Bioinformatics, Statistics, Mathematics, Biophysics, Physics, Chemistry ...

Additional expertise in computational methods would be useful but is not necessary. The Postdoctoral and Senior Research Associate positions will also involve opportunities for travel (once ...

The position is designed to support the candidate's professional development through opportunities ... Experience with bioinformatic pipelines and command-line computational environments. Strong ...

Postdoctoral Associate Apply now Back to search results Job no: 536321 Work type: Research Faculty ... positions to drive the development of agentic AI systems for accelerating computational catalysis ...

Research / Scientific The Halassa lab ( invites applications for a Postdoctoral Associate position ... Data Analysis: Process large-scale neural datasets, applying computational tools to model ...

This position is well suited for candidates with strong expertise in reactor engineering ... or computational tools for data processing, such as Python, MATLAB, or equivalent. - Prior ...

This position supports ongoing and emerging research initiatives focused on coastal hydrodynamics ... D. in a relevant field such as computational science, applied mathematics, or physical oceanography.

... position with the Department of Mathematics at Virginia Tech, Blacksburg, VA. The postdoctoral fellow will work under the supervision of Prof. Yingda Cheng on computational methods and modeling for ...

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Postdoctoral Position Computational Biophysics information

What are the key skills and qualifications needed to thrive as a postdoctoral researcher in computational biophysics?

To thrive as a Postdoctoral Researcher in Computational Biophysics, a strong background in physics, chemistry, or biology along with a PhD and advanced computational modeling skills is essential. Expertise in programming languages (such as Python, C++, or MATLAB), molecular dynamics software (like GROMACS or AMBER), and high-performance computing platforms is typically required. Excellent problem-solving abilities, collaboration, and effective scientific communication are standout soft skills in this field. These skills enable researchers to design, execute, and communicate complex simulations that advance understanding of biological systems and drive scientific discovery.

What is a postdoctoral position in computational biophysics?

A Postdoctoral Position in Computational Biophysics is a temporary research role for individuals who have recently obtained a PhD in a related field. In this position, researchers use computational tools and theoretical models to study biological systems at the molecular or cellular level. The work often involves simulating biomolecules, analyzing large datasets, and developing new computational methods to understand biological processes. These positions are typically held at universities or research institutes and are designed to provide further training and experience before pursuing a permanent academic or industry role.

What are some typical challenges faced by postdoctoral researchers in computational biophysics, and how can they be addressed?

Postdoctoral researchers in computational biophysics often encounter challenges such as integrating complex biological data with advanced computational models, staying current with rapidly evolving software tools, and balancing independent research with collaborative projects. These challenges can be addressed by proactively seeking interdisciplinary collaborations, attending workshops to enhance technical skills, and regularly consulting with mentors and peers. Establishing efficient workflows and participating in lab meetings also helps in managing time and staying aligned with research goals.
What cities in Virginia are hiring for Postdoctoral Position Computational Biophysics jobs? Cities in Virginia with the most Postdoctoral Position Computational Biophysics job openings:
Infographic showing various Postdoctoral Position Computational Biophysics job openings in Virginia as of August 2026, with employment types broken down into 88% Full Time, 4% Part Time, and 8% Contract. Highlights an 82% In-person, and 18% Remote job distribution.

Postdoctoral Researcher in Computational Biology and Machine Learning

University of Virginia

Charlottesville, VA • On-site

Full-time

Re-posted 4 days ago


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Job description

The Chu Lab - Department of Genome Sciences, University of Virginia School of Medicine
The Chu Lab (www.tchulab.org) in the Department of Genome Sciences at the University of Virginia (UVA) School of Medicine is seeking to fill Postdoctoral Researcher positions in computational biology and machine learning. The lab develops modern machine learning, generative modeling, and statistical learning frameworks to decipher single-cell and spatial transcriptomics data, with the goal of uncovering cellular and tissue dynamics underlying cancer, inflammation, and tissue senescence.
Research directions. Successful candidates will lead one or more of the following ongoing projects:
• Developing neural differential equation and continuous-time dynamical models for spatial and single-cell transcriptomics to dissect cell-cell interactions and perturbation responses in complex tissue microenvironments.
• Building generative models of single-cell and spatial data to characterize cellular and tissue heterogeneity in cancer, inflammation, and tissue senescence.
• Developing next-generation deep-learning and statistical deconvolution methods for inferring gene regulation from bulk, single-cell, and spatial-omics data.
Candidates are also encouraged to develop independent research directions aligned with the lab's interests.
About the PI.
The lab is led by Dr. Tinyi Chu, who joined UVA as Assistant Professor in 2026. Dr. Chu received his Ph.D. in Computational Biology from Cornell University and subsequently completed postdoctoral training at Memorial Sloan Kettering Cancer Center and Yale University. His work has appeared as first- or co-first-author publications in Nature Cancer, Nature Genetics, and Cell Stem Cell, spanning statistical method development, cancer transcriptional regulation, and spatial transcriptomics. He is the lead developer of widely used open-source software including BayesPrism, a Bayesian deconvolution framework selected as a Nature Cancer 2022 highlight. Dr. Chu's research has been recognized by a Damon Runyon Quantitative Biology Fellowship and is currently supported by an NIH K99/R00 Pathway to Independence Award (NHGRI) and substantial UVA institutional startup funding - providing a strongly resourced environment for ambitious, long-horizon methodological research.
Mentorship and Career Development
The Chu Lab is built on the philosophy of "Mentorship as Collaboration," where trainees are valued as scientific collaborators rather than assistants. As a postdoctoral scientist in a newly established lab, you will receive individualized mentorship tailored to your career goals, defined by genuine intellectual exchange, direct technical engagement in algorithm and model development, and shared co-ownership of the science.
• Active Collaboration. The PI maintains an open-door policy, meets regularly with trainees, and is deeply involved to support their algorithm and model development.
• Scientific Independence. You will be supported to develop and lead your own research ideas with the freedom and computational resources required to pursue them.
• Grant Writing and Career Transition. Leveraging the PI's recent successful K99/R00 transition, you will receive step-by-step training in scientific writing, proposal preparation, and fellowship applications. Postdocs are supported and encouraged to apply for independent fellowships.
• Visibility. Full support for presenting at top-tier venues spanning machine learning and computational biology, and active assistance in building your professional network across academia and industry.
Environment
The Chu Lab is part of a vibrant interdisciplinary research community at UVA, with active collaborations across the UVA School of Medicine. The lab has full access to UVA's high-performance computing resources and core facilities supporting genomics and imaging.
Charlottesville, Virginia is a highly livable university town nestled at the foothills of the Blue Ridge Mountains, known for its excellent quality of life, affordability relative to other U.S. research hubs, and rich cultural and outdoor offerings.
Minimum Qualifications
Ph.D. (or equivalent) in Computer Science, Applied Mathematics, Statistics, Computational Biology, Biophysics, Engineering, or a related quantitative discipline, in hand by the appointment start date.
Preferred Qualifications
• Strong foundational knowledge in mathematics and statistics
• Proficiency in PyTorch (or equivalent deep-learning frameworks)
• At least one peer-reviewed publication in the previous area of research (not necessarily biology-related)
• Genuine intellectual curiosity for solving biological problems through quantitative approaches
• Prior experience with spatial transcriptomics, single-cell omics, or related biological datasets is a plus but not required - candidates from purely computational backgrounds are strongly encouraged to apply; domain-specific biological knowledge can be acquired on the job
This is a 12-month appointment with the possibility of renewal contingent upon satisfactory performance and the availability of funding. Salary is commensurate with education and experience.
Postdoctoral employment is temporary and is normally limited to an individual who has been awarded a Ph.D. or equivalent doctorate within the previous five years and who will be involved in full-time research or scholarship at the University. Employment as a Postdoctoral Research Associate is viewed as training and is preparatory for a full-time academic or research career, is supervised by a senior scholar, and allows the appointee to publish the results of his/her research or scholarship during the training period
This position will sponsor applicants for work visas who meet the qualifications.
Start date is available immediately; the start date is flexible.
This position will remain open until filled. The University will perform background checks on all new hires prior to employment.
To Apply:
Please apply through Careers at UVA , and search for R0083959.
Complete an application online with the following documents:
  • CV
  • Cover letter
  • Contact information for 3 references.

Upload all materials into the resume submission field, multiple documents can be submitted into this one field. Alternatively, merge all documents into one PDF for submission. Applications that do not contain all required documents will not receive full consideration.
Internal applicants: Search and apply for jobs on the UVA Internal Careers website .
For questions about the application process, please contact Bill Crane, Academic Recruiter at Xer5ff@virginia.edu
The University of Virginia is an equal opportunity employer. All interested persons are encouraged to apply, including veterans and individuals with disabilities. Learn more about UVA's commitment to non-discrimination and equal opportunity employment .

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The University of Virginia is distinctive among institutions of higher education. Founded by Thomas Jefferson in 1819, the University sustains the ideal of developing, through education, leaders who are well-prepared to shape the future of the nation.

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