Principal Data Scientist
Confirmed live in the last 24 hours
Veracyte
Job Description
At Veracyte, we offer exciting career opportunities for those interested in joining a pioneering team that is committed to transforming cancer care for patients across the globe. Working at Veracyte enables our employees to not only make a meaningful impact on the lives of patients, but to also learn and grow within a purpose driven environment. This is what we call the Veracyte way – it’s about how we work together, guided by our values, to give clinicians the insights they need to help patients make life-changing decisions.
Our Values:
- We Seek A Better Way: We innovate boldly, learn from our setbacks, and are resilient in our pursuit to transform cancer care
- We Make It Happen: We act with urgency, commit to quality, and bring fun to our hard work
- We Are Stronger Together: We collaborate openly, seek to understand, and celebrate our wins
- We Care Deeply: We embrace our differences, do the right thing, and encourage each other
The Position:
We are seeking a Principal Data Scientist to lead the research and creation of multimodal AI (MMAI) models and workflows that integrate genomic, transcriptomic, imaging, and clinical data for various oncology applications. This role is critical to advancing the science and technology of MMAI, driving innovation in predictive modeling to benefit patient outcomes, and supporting product strategy through rigorous hypothesis-driven research. The Principal Data Scientist will report to the Senior Director of Computational Biology and collaborate closely with cross-functional teams including Discovery, Bioinformatics and Data Science, Cloud Ops/Engineering, Pathology, Medical, and Clinical Affairs. Based in the R&D division, this role supports our mission to discover, develop, and deliver the best diagnostic, prognostic, and predictive tests to transform cancer care for patients all over the world.
Position can be remote (within USA or Canada), on-site (South San Francisco or San Diego), or hybrid.
Key Responsibilities
- Lead research into novel MMAI models while closely collaborating with other machine learning experts across the computational team on strategy, study design, cohort selection, data acquisition, and data generation.
- Architect, train, and validate MMAI models integrating modalities including genomics, transcriptomics, whole-slide imaging (e.g. H&E tumor tissue slides), and clinical features for cancer prognosis, risk stratification, diagnosis, and therapy selection.
- Drive proof-of-concept and feasibility projects from definition through model development, benchmarking, interpretation, and dissemination of results.
- Design and implement pipelines for ingesting, harmonizing, and integrating diverse data modalities (including whole-slide images, RNA-seq, WGS, clinical metadata).
- Work closely with wet lab scientists, bioinformatics/data science teams, medical/clinical/pathology teams, software/data/cloud engineers, and other cross-functional teams to ensure models are biologically interpretable and clinically applicable.
- Prepare and present findings to technical and non-technical audiences, including conference abstracts and presentations, scientific publications, and internal reports.
Who You Are:
You are a creative, pragmatic leader with a passion for translating complex data into actionable clinical insights to improve management and outcomes of cancer patients. You thrive in multidisciplinary, fast-paced environments, welcome feedback, and are driven by scientific curiosity and rigor. You are comfortable navigating challenges, adapting to evolving priorities, and delivering results on time.
MUST HAVE:
- Ph.D. in bioinformatics, computational biology, genomics, biostatistics, computer science, or a related field applying quantitative computational methodologies to biological/clinical problems.
- Minimum 8 years of relevant experience, with at least 5 years in an industry setting (biotech, diagnostics, or healthcare preferred).
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