Senior/Principal Scientist, Biostatistics & Computational Biology
Flagship Pioneering IncBoston, MA USA$146k – $237kPosted 12 March 2026
Tech Stack
Job Description
Position Summary
ProFound Therapeutics is seeking a pioneering Senior
Scientist/Principal Scientist, Biostatistics Computational Biology to advance the ProFoundry™ Platform through rigorous statistical modeling, inference, and translational analytics. This role is ideal for a candidate with deep expertise in biostatistics, theoretical statistics , and quantitative data analysis, who is passionate about applying statistical principles to complex biological data relevant to cardiometabolic or neurodegenerative disorders to drive therapeutic discovery. The ProFoundry Atlas—a proprietary resource of genetic, transcriptomic, proteomic, and imaging data—offers a unique opportunity to uncover novel biological insights and prioritize targets for drug development. The successful candidate will play a central role in developing statistical frameworks and analytical pipelines that support preclinical research, target validation, and portfolio decision-making.
Company Summary
ProFound Therapeutics is a privately held, early-stage biotechnology company founded by Flagship Pioneering , the creators of over 75 transformative companies including Moderna Therapeutics (NASDAQ: MRNA), Seres Therapeutics (MCRB), and Indigo Agriculture. ProFound is built on a foundation of scientific innovation and entrepreneurial spirit, with a mission to redefine the boundaries of human therapeutics.
Key Responsibilities
Design and implement statistical models for analyzing high-dimensional biological data, including genomics, transcriptomics, proteomics, and imaging relevant to cardiometabolic or neurodegenerative disorders
Apply principles of theoretical and applied statistics to develop novel inference methods tailored to biological questions
Lead the development of robust, reproducible pipelines for hypothesis testing, causal inference, and predictive modeling across multi-omics datasets
Collaborate with interdisciplinary teams to translate statistical findings into biological insights and therapeutic hypotheses
Develop simulation frameworks and statistical benchmarking tools to evaluate model performance and data quality
Apply advanced statistical modeling to support target discovery, prioritization, and validation , integrating multi-omics and functional data
Design and analyze preclinical experiments , including dose-response studies, biomarker discovery, and mechanistic investigations
Use Bayesian and frequentist frameworks to quantify uncertainty and support decision-making in early-stage drug development
Build simulation models to assess study designs, optimize resource allocation, and forecast outcomes in preclinical pipelines
Contribute to portfolio-level analytics , helping prioritize targets based on statistical evidence, biological plausibility, and translational potential
Support statistical planning for in vitro and in vivo studies, including power calculations, randomization schemes, and reproducibility assessments
Develop scoring systems and prioritization frameworks for ranking therapeutic targets using multi-dimensional data inputs
Ensure statistical rigor in the interpretation of experimental results, guiding go/no-go decisions and milestone reviews
Minimum Qualifications
PhD in Biostatistics, Statistics, Applied Mathematics , or a related quantitative field with 3+ years of postdoctoral or industry experience; or MS with 7+ years of relevant experience
Strong foundation in statistical theory, including probability, inference, regression, and multivariate analysis
Experience applying statistical methods to biological or biomedical datasets, including genomics, transcriptomics, or clinical data relevant to cardiometabolic/neurodegenerative disorders
Proficiency in statistical programming languages (e.g., R, Python) and familiarity with statistical computing environments
Demonstrated ability to develop and validate statistical models and algorithms for complex, high-dimensional data
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