Job Description
Associate Director of Data Science, Computational Oncology (R4)
Translational Genome Analytics (TGA) / Data, AI and Genome Sciences (DAGS)
Location: Boston, MA (hybrid)
Our company is a global health care leader committed to being the world's premier, most research-intensive biopharmaceutical company. Our Research Laboratories take our leading discovery capabilities and world-class small molecule and biologics research and development expertise to create breakthrough science that radically changes how we approach serious diseases.
The Data, AI and Genome Sciences (DAGS) department seeks a talented data scientist with a strong quantitative and statistical foundation to join our Translational Genome Analytics (TGA) team in Boston, MA. In this role, you will bring rigorous statistics, machine learning, and modern AI to large, complex multi-omics and functional genomics datasets to understand the molecular basis of cancer and to nominate targets and biomarkers across our research portfolio. You will work closely with computational, AI and ML, and experimental colleagues to turn data into decisions that move programs forward. We are especially interested in scientists with a strong oncology and cancer genomics background who can also analyze functional genomics screens, so you can support target nomination and the broader discovery portfolio from both directions.
You are an independent scientist who takes an open-ended question and carries it through to a clear answer, and who thrives in a highly collaborative discovery environment.
In This Exciting Role, You Will
- Analyze large-scale oncology datasets, including bulk RNA-seq, whole-exome and whole-genome sequencing (WES/WGS), and single-cell RNA-seq (scRNA-seq), to understand disease biology and the mechanisms of disease progression and drug action.
- Analyze functional genomics and perturbational screens, including pooled and arrayed CRISPR screens and Perturb-seq, from QC and hit calling through biological interpretation, to establish target dependency and mechanism for programs across therapeutic areas.
- Nominate and prioritize drug combinations for both oncology and immunology disease areas by weighing expression profiling, disease biology, mechanistic and functional-genomics evidence, and the competitive landscape together, and bring that evidence to program teams across the portfolio.
- Apply rigorous statistics and integrate multi-omics and functional genomics data with prior biological knowledge, using network-based and machine learning approaches, to reach robust conclusions and a coherent picture of target and pathway biology.
- Apply deep learning and single-cell foundation models to problems such as cell-type deconvolution, batch integration, patient stratification, and perturbation-response prediction.
- Use modern AI, including LLM-based agents and retrieval over internal data, to accelerate evidence synthesis and analysis, and help bring these tools into routine, well-validated use.
- Draw on human and real-world data to inform and reverse-translate discovery hypotheses, connecting preclinical findings to patient biology.
- Collaborate closely across disciplines, including experimental scientists, AI and ML and data science teams, software engineers, and program teams, and set a high bar for reproducible, well-documented research that supports Discovery Oncology.
Minimum Requirements
- A PhD in computational biology, bioinformatics, biostatistics, genetics/genomics, computational biology, mathematics, computer science, biophysics, computational chemistry or a related quantitative STEM discipline and 0+ years of relevant experience; MS and 8+ years of relevant experience; OR BS and 12+ years of relevant experience.
- A passion for solving problems in oncology and cancer genomics through computational methods, with a consistent focus on detail and execution.
- Deep experience analyzing and biologically interpreting large-scale NGS datasets (bulk RNA-seq, WES/WGS, scRNA-seq), including experimental design, QC, and building analyses where no standard pipeline exists, and integrating multiple omics layers with prior biological knowledge.
- A strong statistical foundation, spanning hypothesis testing, regression and mixed models, survival analysis, and dimensionality reduction, with sound judgment about confounding, batch effects, and multiple comparisons, and a track record of applying machine learning to biological data with judgment about where it adds value and where simpler methods suffice.
- Strong technical skills, including R or Python, version control (Git), and Linux, with hands-on experience across cloud and data platforms such as AWS (S3), Nextflow, Databricks, and Posit.
- Familiarity with major cancer genomics resources, such as TCGA, GTEx, CCLE, CPTAC, and DepMap.
- A collaborative working style and excellent oral and written communication skills.
Preferred Experience and Skills
- A Ph.D. in Bioinformatics, Biostatistics, Computational Biology, Statistics, Computer Science, Genetics, Mathematics, or a related field.
- Post-doctoral or relevant industry experience in cancer genomics or computational oncology, with a deep understanding of cancer biology and current research trends.
- Substantial computational experience with functional genomics data, including CRISPR screen hit-calling frameworks, library design, optical or single-cell screens, and image-based phenotypic profiling.
- Experience applying or fine-tuning foundation models for single-cell or genomic data, and an interest in developing agentic AI and LLM-powered tools for biological analysis.
- Network-based analysis of gene regulatory patterns and signaling pathways from NGS data.
- A strong publication record.
Travel
Up to 10% travel is required.
Required Skills:
Bioinformatics, Biostatistics, Cancer Genomics, CRISPR-Cas System, Data Modeling, Data Science, Data Visualization, Genomics, Machine Learning (ML), Omics, Oncology, Stakeholder Relationship ManagementPreferred Skills:
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The salary range for this role is
$159,600.00 - $251,200.00This is the lowest to highest salary we in good faith believe we would pay for this role at the time of this posting. An employee’s position within the salary range will be based on several factors including, but not limited to relevant education, qualifications, certifications, experience, skills, geographic location, government requirements, and business or organizational needs.
The successful candidate will be eligible for annual bonus and long-term incentive, if applicable.
We offer a comprehensive package of benefits. Available benefits include medical, dental, vision healthcare and other insurance benefits (for employee and family), retirement benefits, including 401(k), paid holidays, vacation, and compassionate and sick days. More information about benefits is available at https://jobs.merck.com/us/en/compensation-and-benefits.
You can apply for this role through https://jobs.merck.com/us/en (or via the Workday Jobs Hub if you are a current employee). The application deadline for this position is stated on this posting.
San Francisco Residents Only: We will consider qualified applicants with arrest and conviction records for employment in compliance with the San Francisco Fair Chance Ordinance
Los Angeles Residents Only: We will consider for employment all qualified applicants, including those with criminal histories, in a manner consistent with the requirements of applicable state and local laws, including the City of Los Angeles’ Fair Chance Initiative for Hiring Ordinance
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Merck & Co., Inc., Rahway, NJ, USA, also known as Merck Sharp & Dohme LLC, Rahway, NJ, USA, does not accept unsolicited assistance from search firms for employment opportunities. All CVs / resumes submitted by search firms to any employee at our company without a valid written search agreement in place for this position will be deemed the sole property of our company. No fee will be paid in the event a candidate is hired by our company as a result of an agency referral where no pre-existing agreement is in place. Where agency agreements are in place, introductions are position specific. Please, no phone calls or emails.
Employee Status:
RegularRelocation:
DomesticVISA Sponsorship:
YesTravel Requirements:
10%Flexible Work Arrangements:
HybridShift:
Not IndicatedValid Driving License:
NoHazardous Material(s):
n/aJob Posting End Date:
10/5/2026*A job posting is effective until 11:59:59PM on the day BEFORE the listed job posting end date. Please ensure you apply to a job posting no later than the day BEFORE the job posting end date.

