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Director, Commercial Data Science & AI​/ML - Oncology

Job in Durham, Durham County, North Carolina, 27703, USA
Listing for: GlaxoSmithKline
Full Time position
Listed on 2026-03-02
Job specializations:
  • IT/Tech
    Data Science Manager, AI Engineer, Data Analyst, Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 125000 - 150000 USD Yearly USD 125000.00 150000.00 YEAR
Job Description & How to Apply Below

Site Name:
Durham Blackwell Street, USA - Pennsylvania - Philadelphia

Posted Date:
Feb 25 2026

Job Profile

You will lead high-impact data science and AI/ML initiatives that drive commercial strategy across our Oncology portfolio, spanning solid tumors and hematology. Working closely with commercial, medical, market access, and technology teams, you will transform complex oncology data into actionable insights that shape go-to-market decisions, optimize HCP engagement, and accelerate patient access.

We value strategic thinkers who can operate at the intersection of advanced analytics and the unique commercial complexities of the oncology landscape - and who inspire and grow the teams around them. This role offers significant visibility, leadership influence, and the opportunity to align with GSK's mission of uniting science, technology, and talent to get ahead of disease together.

Responsibilities

This role will provide YOU the opportunity to lead key activities to progress YOUR career. These responsibilities include some of the following:

  • Lead the design, development, and delivery of advanced predictive models and AI/ML solutions that support commercial decisions across the Oncology portfolio, including launch readiness, tumor market segmentation, promotional response, and end-to-end patient journey analytics across solid tumors and hematology indications.
  • Partner with Commercial, Market Access, Medical Affairs, and Marketing teams to translate business questions into analytical plans with measurable impact on revenue, patient outcomes, and market share within highly competitive oncology markets.
  • Build, validate, and operationalize end-to-end machine learning workflows - from data ingestion and feature engineering through model deployment, monitoring, and performance tracking - leveraging oncology commercial data assets such as claims, EMR, specialty pharmacy, and oncology-specific registries.
  • Develop and apply AI/ML methods to oncology-specific commercial challenges, including HCP targeting and segmentation by tumor type and treatment line, biosimilar and competitive entry modeling, patient identification and treatment gap analysis, and access barrier identification across complex payer, IDN, and GPO landscapes.
  • Lead sophisticated market access analytics including payer mix modeling, formulary coverage impact analysis, net price optimization, and prior authorization burden quantification specific to oncology reimbursement dynamics.
  • Lead and mentor a team of data scientists and analysts, setting technical standards, fostering reproducible and responsible AI practices, and building a high-performing, collaborative team culture.
  • Communicate complex analytical findings clearly and persuasively to senior commercial and medical leaders, enabling evidence-based decisions on strategy, investment, and resource allocation in the oncology business unit.
  • Champion the adoption of modern AI/ML tools, GenAI applications, and scalable data infrastructure to continuously elevate the commercial analytics capability across the oncology organization.
  • Collaborate with IT, Data Engineering, and external vendors to ensure data quality, governance, and compliance with relevant privacy and regulatory standards (e.g., HIPAA, GDPR, FDA promotional guidelines).
Why You? Working Model

This role is hybrid with an expectation to be on-site as needed for collaboration and team interactions. Exact hybrid schedule will be discussed during the hiring process.

Basic Qualifications

We are seeking professionals with the following required skills and qualifications to help us achieve our goals:

  • Advanced degree (Master's or PhD) in Data Science, Computer Science, Statistics, Applied Mathematics, or a related quantitative field.
  • 10+ years of hands-on experience in applied data science, machine learning, or statistical modeling, with at least 3 years in a pharmaceutical or biotech commercial setting focused on oncology.
  • Demonstrated experience working with oncology commercial data assets, including IQVIA (e.g., LAAD, DDD, Xponent), Optum (e.g., Cl informatics, claims data), Symphony Health, or similar syndicated and patient-level data sources, with the ability to assess data quality, coverage, and appropriate use cases for each.
  • Strong programming skills in Python or R, experience with relevant ML libraries (e.g., scikit-learn, Tensor Flow, PyTorch, XGBoost), and demonstrated ability to leverage AI-powered development tools (e.g., Git Hub Copilot, Cursor, or LLM-based coding agents) to accelerate and enhance programming workflows.
  • Experience deploying models and building end-to-end ML pipelines using cloud platforms (AWS, Azure, or GCP) or containerized services.
  • Proven ability to lead complex, cross-functional commercial analytics projects and influence senior stakeholders in a matrixed oncology organization.
  • Excellent written and verbal communication skills with the ability to translate complex analytical outputs into clear commercial recommendations for oncology…
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