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Computational Biologist

Verge Genomics · San Francisco - Remote · Remote · Active · Ashby

Job facts

FieldValue
CompanyVerge Genomics
TitleComputational Biologist
Normalized title-
Department / teamComputational Biology / Computational Biology
LocationSan Francisco, CA, United States
Work modelRemote / Remote
Employment typeFull Time
Salary-
Statusactive
ATS providerAshby
Posted / first seen / 2026-05-29
Changed / last seen2026-05-29 / 2026-06-06

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PageWhat it containsOpen
Company jobsActive postings from Verge Genomics.Open
Company breakdownsRole, location, ATS, and work model facets for this company.Open
ATS provider jobsActive postings observed through Ashby.Open
Provider filtered searchThe same provider as a filtered job collection.Open
City jobsActive postings in San Francisco.Open
Department jobsActive postings in Computational Biology.Open
Work model jobsActive Remote postings.Open
Lifecycle eventsOpen, update, close, and reopen events for this posting.Open
Original postingCanonical source or apply URL captured from the ATS.Open

Linked records

CompanyVerge Genomics
Source7e211ce3-78c8-46b6-9770-ade81360aea9
ATS providerAshby

Description

Who We Are Verge is transforming drug discovery by using artificial intelligence and proprietary human data to solve the biggest driver of rising drug costs: high clinical failure rates. To achieve this, we have built one of the field’s largest corpuses of multi-modal patient molecular and clinical data, sourced directly from human tissue. Our team of engineers, neuroscientists, and biologists have so far delivered two drugs to clinic, discovered 282 new targets, and signed commercial partnerships worth in excess of $1.6B with Eli Lily and AstraZeneca. Your Mission Reporting to the Head of Product & Engineering, and working alongside Verge's platform and computational biology teams, the Computational Biologist (AI/ML) will be responsible for defining and enabling new product offerings leveraging Verge’s drug discovery engine for internal stakeholders, external partners (across both pharma and AI), and customers. Your 12 Month Outcomes Work with Verge’s AI partners to deliver a best-in-class biology foundation model with Verge's proprietary datasets Develop a novel approach that enables a powerful new product offering (patient stratification, biomarker discovery, etc.) Deliver at least two CONVERGE-powered insights projects to pharma/biotech companies Build an internal agentic AI workflow that supports multi-modal biomedical reasoning and orchestration You Will Develop and evaluate cutting-edge computational methodologies integrating multi-omic datasets to develop predictive models for translational biology, Lead high-impact projects that apply and adapt AI models to translational challenges in disease biology, biomarker discovery, and target exploration, Lead partnerships with AI companies to co-develop next-generation foundation models for drug discovery Frame biological problems in computational terms and design solutions that are biologically meaningful, interpretable, and experimentally testable, Design and implement evaluation methodologies for assessing AI model capabilities relevant to biological research and applications, Translate between biological domain knowledge and machine learning objectives. Requirements Candidates must have : Either: PhD in computational biology, AI/ML, applied statistics, biophysics, or , MS and professional experience in relevant fields. ≥5 years of experience working in applied computational biology and integration of multi-omic datasets (RNA-seq, genotyping, clinical), with ≥2 years in a startup environment, ≥2 years of experience in relevant areas of translational science , demonstrating a deep understanding of target identification, biomarker discovery, and/or patient stratification, Proven ability to implement, evaluate, and/or create computational methodologies that leverage machine learning, statistics, and AI for biological research and discovery, Fluency with state of the art in systems biology workflows, including off-the-shelf biological databases and computational biology tools, Track record of bridging biological domain knowledge with computational approaches to solve real scientific problems Track record of individual innovation, with published research or shipped work influencing pharma R&D decisions Experience running a significant number of end-to-end RNA-Seq data analyses (from QC, read quantification, normalization through to interpretation), Excellent coding skills in Python, with experience in relevant ML/AI libraries (e.g., PyTorch, HuggingFace, scikit-learn, pandas, numpy). A demonstrable portfolio (e.g., GitHub, research code, or shared notebooks) is highly preferred, Experience in building and evaluating machine learning models on biological data , ideally with transformer-based models (e.g., scGPT, Geneformer, ESM, ProtBERT), with a deep understanding of feature selection, model interpretability, Professional experience with AI workflows, including natural language processing (NLP), retrieval-augmented generation (RAG), embeddings, vectorization of diverse data types, and working with large language models (e.g., GPT), Demonstrated experience with model evaluation and experimental design in a scientific context, including setting up appropriate benchmarks and controls. Finally, we seek candidates who embrace our values and way of working: Ability to thrive in uncertainty with frequently changing priorities Deep alignment with our values A passion for making an impact on patients

Full job record

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Org ID1490a8d0-6f21-477a-b6f9-c3373c8c1b4c
Source ID7e211ce3-78c8-46b6-9770-ade81360aea9
Board ID7e211ce3-78c8-46b6-9770-ade81360aea9
Providerashby
Provider Job Key0edb63c4-bc71-4d38-ae6b-cd7ec0676e76
TitleComputational Biologist
Normalized Title
Statusactive
Activeyes
Location TextSan Francisco - Remote
DepartmentComputational Biology
TeamComputational Biology
Employment Typefull_time
Workplace Typeremote
Remote Policyremote
CountryUnited States
RegionCA
CitySan Francisco
Salary Raw
Salary Min
Salary Max
Salary Currency
Salary Period
Source URLhttps://jobs.ashbyhq.com/verge-genomics/0edb63c4-bc71-4d38-ae6b-cd7ec0676e76
Apply URLhttps://jobs.ashbyhq.com/verge-genomics/0edb63c4-bc71-4d38-ae6b-cd7ec0676e76/application
First Seen At2026-05-29 06:17:18Z
Last Seen At2026-06-06 09:24:39Z
Last Checked At2026-06-06 09:24:39Z
Last Changed At2026-05-29 06:17:18Z
Inactive At
Source Posted At
Source Updated At
Raw Payload Uris3://job-postings-prod-raw-590183727216/raw/provider=ashby/board=verge-genomics/date=2026-06-06/2026-06-06T09-24-37-531Z-41431767ec57cdd7ad6001295b2dfdc2dfebea5fae797d5ed53ad99285b296fa.json
Event Fields
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Extensions
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Native Structured
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