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Phd Computational Science Jobs (NOW HIRING)

PhD degree from an accredited institution with experience in computational sciences or a related ... scientific discipline (e.g., Computer sciences, Computational Biology, Genomics, Biostatistics ...

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Phd Computational Science information

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How much do phd computational science jobs pay per year?

As of Sep 13, 2026, the average yearly pay for phd computational science in the United States is $83,109.00, according to ZipRecruiter salary data. Most workers in this role earn between $77,500.00 and $93,500.00 per year, depending on experience, location, and employer.

What is a PhD in Computational Science?

A PhD in Computational Science is an advanced research degree focused on the development and application of computational techniques to solve complex problems in science, engineering, and other fields. Students in this program conduct original research involving mathematical modeling, computer simulations, and data analysis. The degree prepares graduates for careers in academia, industry, and government, where they apply computational methods to advance scientific discovery and innovation.

What are the typical collaborative opportunities for a PhD in Computational Science within interdisciplinary research teams?

PhDs in Computational Science often work closely with experts from diverse fields such as biology, engineering, physics, and data science. Collaboration is a key part of the role, as computational scientists provide advanced modeling, simulation, and data analysis expertise that supports the research goals of the team. These professionals regularly participate in joint project meetings, contribute to cross-disciplinary publications, and work with both academic and industry partners. This collaborative environment not only enhances problem-solving but also provides valuable networking and learning opportunities, which can contribute to career growth and innovative research outcomes.

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

To thrive as a PhD in Computational Science, you need advanced expertise in mathematics, computer science, and domain-specific scientific knowledge, along with a doctoral degree in a related field. Proficiency in programming languages (such as Python, C++, or MATLAB), experience with high-performance computing, and familiarity with simulation or modeling software are typically required. Strong analytical thinking, problem-solving, and the ability to communicate complex concepts clearly are essential soft skills. These competencies are crucial for developing innovative computational solutions to scientific problems and advancing research in multidisciplinary environments.

What is the difference between Phd Computational Science vs Data Scientist?

AspectPhd Computational ScienceData Scientist
Required CredentialsPhD in Computational Science, strong programming, mathematical skillsTypically a bachelor's or master's in data science, computer science, or related fields; some roles prefer a PhD
Work EnvironmentResearch labs, academia, R&D departments in industryCorporate, tech companies, finance, healthcare, often collaborative teams
Industry UsageResearch institutions, universities, specialized R&D sectorsBusiness analytics, product development, machine learning applications

While both roles require strong analytical and programming skills, a Phd Computational Science focuses more on research, modeling, and simulation, often within academic or R&D settings. Data Scientists typically work on data analysis, predictive modeling, and business insights in industry environments. The choice depends on whether you prefer research-oriented work or applied data analysis in a commercial setting.

Is a PhD in computational science worth it?

A PhD in computational science prepares individuals for research, academia, and specialized industry roles that require advanced analytical and programming skills. It can lead to higher-level positions and increased earning potential but involves significant time and financial investment. The value depends on career goals and the demand for expertise in computational methods within specific fields.

What can I do with a PhD in computational science?

A PhD in computational science prepares individuals for research and development roles in academia, industry, and government, focusing on modeling, simulation, and data analysis. Graduates often work as computational scientists, data scientists, software developers, or research scientists, utilizing programming skills and advanced analytical tools to solve complex problems across fields like physics, biology, finance, and engineering.

What are popular job titles related to Phd Computational Science jobs?

For Phd Computational Science jobs, the most frequently searched job titles are:

Infographic showing various Phd Computational Science job openings in the United States as of September 2026, with employment types broken down into 2% Internship, 1% As Needed, 75% Full Time, 20% Part Time, and 2% Contract. Highlights an 74% Physical, 3% Hybrid, and 23% Remote job distribution, with an average salary of $83,109 per year, or $40 per hour.

Computational Scientist

Kansas City, MO • On-site

The Stowers Institute for Medical Research
Scientific Research and Development Services • 201 - 500 employees

Other

Posted 25 days ago


Key responsibilities

  • Lead the analysis of data generated by various mass spectrometry methods, including bottom-up, top-down, native, cross-linking, and spatial mass spectrometry.

  • Oversee the design, maintenance, and evolution of computational pipelines for proteomics data processing, quality control, statistical analysis, and visualization.

  • Partner with experimental staff and investigators to ensure computational approaches support experimental design and facilitate biological discovery.


Job description

The Stowers Institute for Medical Research seeks an accomplished computational scientist to serve as Lead of Computational Mass Spectrometry (MS) and Innovation, within our Systems Mass Spectrometry (SMS) Technology Center. The leadership role sits at the intersection of innovative technology, scientific collaboration, and the Institute’s mission to advance our understanding of life’s fundamental processes. The successful candidate will help drive a cutting‑edge core facility at the heart of a vibrant, multidisciplinary research community, and is expected to bring a strong track record in mass spectrometry data analysis, reporting, and methodological innovation, together with exemplary communication, collaboration, and leadership skills.

Overview of the Role

Biological mass spectrometry is entering a transformative era defined by AI-enabled analysis, increasing data scale, and proteoform-level resolution. This role offers a rare opportunity to shape the analytical foundations of next-generation mass spectrometry-based multiomics (proteomics, metabolomics, lipidomics) and to define how advanced computation and AI unlock new biological and biomedical insights. The Lead of Computational MS and Innovation will be empowered to build new capabilities, pursue bold ideas, and influence the direction of biological mass spectrometry research at an institutional level.

Reporting to the Director of Systems Mass Spectrometry, the scientist will lead cutting-edge analysis of data generated by a broad portfolio of modern MS methods, including bottom-up, top-down, native, cross-linking and spatial mass spectrometry, as well as multiomics (metabolomics and lipidomics). The successful candidate will also contribute to project design, and technology development while serving as a scientific and technical resource for the Institute’s investigators. The position requires deep technical expertise, collaborative spirit, and outstanding interpersonal skills, with regular interaction across more than 20 independent research programs and a spectrum of technology development facilities. Their lead will also help establish standard operating protocols for results reporting and will champion cross-technology collaboration that merges new‑generation mass spectrometry methods with biological discovery.

Key Responsibilities Scientific Leadership and Strategy
  • Define and execute a long-term computational proteomics and AI innovation strategy aligned with institutional research priorities.
  • Serve as the intellectual leader for computational analysis of large-scale proteomics, native and top‑down proteomics, PTM analysis, and integrative multi‑omics datasets.
  • Identify emerging technologies, analytical paradigms, and AI methodologies that can transform proteomics data interpretation and biological insight.
  • Partner with computational scientists in other technology centers and PI laboratories to integrate mass spectrometry data with genomics, transcriptomics, and microscopy datasets.
  • Drive high‑impact publications, presentations, and dissemination of novel computational methods.

Lead the development and deployment of machine learning and AI approaches for proteomics, including:

  • Deep learning for peptide and proteoform identification and scoring
  • AI-based spectral prediction and library‑free analysis
  • Methods for both DIA and DDA acquisition strategies
  • Automated proteoform annotation and confidence assessment
  • Explore and implement generative AI, foundation models, and representation‑learning approaches for proteomics and multi‑omics data.
  • Drive innovation in scalable, automated, and reproducible analysis pipelines for high‑throughput proteomics.
Data Analysis and Infrastructure
  • Oversee the design, maintenance, and evolution of computational pipelines for proteomics data processing, quality control, statistical analysis, and visualization.
  • Guide the integration of proteomics data with genomics, transcriptomics, and metabolomics datasets.
  • Partner with IT and the Big Data team at Stowers to ensure robust data management, cloud/HPC utilization, and FAIR data practices.
Collaboration and Scientific Partnership
  • Work closely with experimental proteomics staff, and biological investigators to ensure computational approaches are tightly coupled to experimental design.
  • Act as a senior scientific consultant for complex studies requiring custom analysis, novel algorithms, or advanced statistical modeling.
  • Represent computational proteomics expertise in institutional initiatives, external collaborations, and consortium‑based projects.
Required Qualifications
  • Masters is minimal, PhD in Chemistry, Biochemistry, Proteomics, Bioanalytical Chemistry, or a related field is strongly preferred (or equivalent experience).
  • Post‑doctoral experience and/or 3 to 5 years of work experience post‑graduate is strongly preferred.
  • Demonstrated hands‑on experience with computational analysis of native and/or top‑down mass spectrometry and proteform discovery, cross‑linking mass spectrometry, and spatial mass spectrometry.
  • Experience with analysis of metabolomics datasets.
  • Experience with both DIA and DDA methods
  • Proficiency in Python, R, or similar languages, and familiarity with machine‑learning frameworks (e.g., PyTorch, TensorFlow, scikit‑learn).
  • Working knowledge of software platforms such as Proteome Discoverer, Skyline, Compound Discoverer, Xcalibur, or similar.
  • Experience working in a shared‑resource or collaborative research environment.
  • Demonstrated ability to lead and manage scientific teams and complex projects.
  • Strong communication, organizational, and interpersonal skills.
  • Strong publication record.
Preferred Qualifications
  • Experience deploying AI/ML models in production scientific environments.
  • Familiarity with cloud computing (AWS, GCP, or Azure) and workflow managers (Nextflow, Snakemake).
  • Track record of open‑source software contributions in proteomics or multi‑omics.
To Apply

Submit the requested documents to careers@stowers.org or to Administration Department, Stowers Institute for Medical Research, 1000 E 50th Street, Kansas City, MO 64110.

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