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HomeCompaniesCalicoMachine Learning Scientist / Senior Machine Learning Scientist

Machine Learning Scientist / Senior Machine Learning Scientist

Calico · South San Francisco, CA · On Site · Active · $170,000–$240,000 / year · Greenhouse

Job facts

FieldValue
CompanyCalico
TitleMachine Learning Scientist / Senior Machine Learning Scientist
Normalized title-
Department / teamRESEARCH
LocationSouth San Francisco, CA, United States
Work modelOn Site
Employment type-
Salary$170,000–$240,000 / year
Statusactive
ATS providerGreenhouse
Posted / first seen2026-05-01 / 2026-05-29
Changed / last seen2026-05-29 / 2026-06-06

Related slices

PageWhat it containsOpen
Company jobsActive postings from Calico.Open
Company breakdownsRole, location, ATS, and work model facets for this company.Open
ATS provider jobsActive postings observed through Greenhouse.Open
Provider filtered searchThe same provider as a filtered job collection.Open
City jobsActive postings in South San Francisco.Open
Department jobsActive postings in RESEARCH.Open
Work model jobsActive On Site 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

CompanyCalico
Sourceea9d7dfd-8214-4cf8-a2ce-f44716915693
ATS providerGreenhouse

Description

Who We Are: Calico (Calico Life Sciences LLC) is an Alphabet-founded research and development company whose mission is to harness advanced technologies and model systems to increase our understanding of the biology that controls human aging. Calico will use that knowledge to devise interventions that enable people to lead longer and healthier lives. Calico’s highly innovative technology labs, its commitment to curiosity-driven discovery science and, with academic and industry partners, its vibrant drug-development pipeline, together create an inspiring and exciting place to catalyze and enable medical breakthroughs. Position Description : Calico is seeking a machine learning scientist to join a research group investigating how genome sequence determines regulatory function and how dysregulation of these programs drives aging. We develop sequence-based deep learning models that predict gene expression, chromatin accessibility, and other functional readouts directly from DNA. We use these models to interpret human genetic variation, map causal regulatory mechanisms, and identify promising intervention points. This work builds on a sustained research program at the intersection of deep learning and regulatory genomics, including: Avsec, Ž. et al. Effective gene expression prediction from sequence by integrating long-range interactions. Nat Methods 18 , 1196–1203 (2021). Yuan, H. & Kelley, D. R. scBasset: sequence-based modeling of single-cell ATAC-seq using convolutional neural networks. Nat Methods 19 , 1088–1096 (2022). Linder, J., Srivastava, D., Yuan, H., Agarwal, V. & Kelley, D. R. Predicting RNA-seq coverage from DNA sequence as a unifying model of gene regulation. Nature Genetics (2025). Additional research can be found here . Position Responsibilities: Design and train deep learning models for biological sequence analysis, with emphasis on gene regulation, single-cell genomics, and variant interpretation Partner with experimental scientists to connect model predictions to biological mechanisms — designing validation experiments, analyzing large-scale genomics data, and translating computational findings into actionable biological insights Communicate research through publications, open-source software, and public-facing tools Position Requirements: PhD in computational biology, bioinformatics, computer science, or a related field, and 0-5 years (for Scientist level) or 5+ years (for Senior Scientist level) of additional training in an industry or academic setting, with a strong publication record Deep expertise in machine learning with solid grounding in algorithms, data structures, and statistics Substantive knowledge of molecular biology and genetics; familiarity with genomic data types and public data resources Hands-on experience analyzing genomics sequencing data, ideally including single-cell assays Fluency with modern AI-assisted development and research tools (e.g., LLM-based coding assistants, literature synthesis), with a habit of proactively integrating new tools to accelerate scientific workflows A collaborative disposition, strong follow-through, and comfort working at the interface of computation and experiment Must be willing to work onsite at least four days per week The estimated base salary range for this role is $170,000 - $240,000. Actual pay will be based on a number of factors including experience and qualifications. This position is also eligible for two annual cash bonuses

Full job record

Job IDfea9ffa71b04db1639dcb7ec47f5cbcd8f468ca8
Org IDe49fdd01-514a-415b-a6c1-de4649b78386
Source IDea9d7dfd-8214-4cf8-a2ce-f44716915693
Board IDea9d7dfd-8214-4cf8-a2ce-f44716915693
Providergreenhouse
Provider Job Key8533254002
TitleMachine Learning Scientist / Senior Machine Learning Scientist
Normalized Title
Statusactive
Activeyes
Location TextSouth San Francisco, CA
DepartmentRESEARCH
Team
Employment Type
Workplace Typeon_site
Remote Policy
CountryUnited States
RegionCA
CitySouth San Francisco
Salary Rawsalary range for this role is $170,000 - $240,000. Actual pay will be based on a number of factors including experience and qualif
Salary Min170,000
Salary Max240,000
Salary CurrencyUSD
Salary Periodyear
Source URLhttps://www.calicolabs.com/careers/?gh_jid=8533254002
Apply URLhttps://www.calicolabs.com/careers/?gh_jid=8533254002
First Seen At2026-05-29 23:04:41Z
Last Seen At2026-06-06 07:35:58Z
Last Checked At2026-06-06 07:35:58Z
Last Changed At2026-05-29 23:04:41Z
Inactive At
Source Posted At2026-05-01 18:04:56Z
Source Updated At2026-05-27 23:28:46Z
Raw Payload Uris3://job-postings-prod-raw-590183727216/raw/provider=greenhouse/board=calicolabs/date=2026-06-06/2026-06-06T07-35-58-021Z-61b128c959962788d1480d74c71289f586cfb61587bc34411888032608e18578.json
Event Fields
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  "active_status": "active"
}
Parsed Structured
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  "salary_currency": "USD"
}
Extensions
{}
Native Structured
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