AstraZeneca

Associate Director, Real World Evidence Data Scientist, Gaithersburg, MD

AstraZeneca • $144K — $216K *
Healthcare
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • PhD or MS in epidemiology, biostatistics, data science, computer science, or health informatics with 3+ years of pharmaceutical industry experience.
  • 5+ years of direct experience working with large healthcare datasets such as claims and EHR.
  • Expertise in R, Python, and SQL, with experience in developing FAIR-compliant data analytics pipelines.
  • Strong skills in building partnerships with stakeholders and managing competing priorities effectively.
  • Excellent oral and written communication skills, able to translate research questions into actionable plans.
  • Proficiency in using GenAI-based coding assistants for project planning and data analysis.
  • Eagerness to continuously learn and adapt to new RWD methodologies and technologies.

Responsibilities

  • Collaborate with stakeholders to design studies and assess RWD feasibility.
  • Maintain knowledge of real-world oncology data and evaluate data sources for studies.
  • Translate business and scientific queries into clear analytic specifications.
  • Stay updated on RWE generation methodologies and provide input on study design.
  • Incorporate LLMs and AI tools into analytics workflows for efficiency.
  • Communicate complex analyses clearly to technical and non-technical audiences.

Benefits

  • Eligibility for short-term incentive bonuses and equity-based awards.
  • Access to qualified retirement programs.
  • Generous paid time off including vacation and leave.
  • Health, dental, and vision coverage.
Full Job Description
Introduction to the role

The Centre for Oncology Data Excellence (CODE) is a function that is focused on delivering best in class scientifically rigorous research to support Global Medical Evidence Generation. Within CODE, the Real World Evidence (RWE) Data Scientist will be part of the Oncology Data & Analytics (ODA) team, responsible for real-world data (RWD) analysis, Data Foundation & Governance, Analytics Platforms/Tools and innovative AI capabilities.

As a member within the ODA team, your collaboration will span multiple functions within Medical Evidence Generation. The ideal candidate for this role will bring a proven track record of delivering value through the utilization of routinely collected data from healthcare settings, providing health analytics and insights in various contexts including Public Health, Pharmaceutical Research and Development, and Commercial/Payer sectors. They will collaborate with colleagues in Oncology Outcomes Research (O2R), Epidemiology, and Statistics to provide scientific and technical guidance on study design, data selection, best practices in using RWD, and implementing advanced statistical methods. With the rapid development of GenAI, the successful candidate will be expected to leverage cutting-edge AI tools to scale analytics tasks and augment data insights.

Accountabilities:
  • Collaborate with key stakeholders, including outcomes research and next-gen science groups to support study design, conduct RWD feasibility assessments, and execute protocol-driven and insight projects to a high standard.
  • Maintain in-depth knowledge of real-world oncology data sources (claims, EHR, and registries). Provide strong insights into the strengths and limitations of in-house data sources to facilitate data suitability assessments for study planning.
  • Translate ambiguous business and scientific questions into clear, actionable analytic specifications and programming tasks (R/Python/SQL). Champion reusable code libraries, version control, and reproducible data science workflows.
  • Stay current with methodological developments in real world evidence (RWE) generation, including causal inference, ECA, ML/AI methods, and federated learning/OMOP, and provide clear technical input on study design and analysis.
  • Incorporate LLMs/GenAI, agentic workflows and AI coding tools into day-to-day workflows to accelerate code development, discovery, documentation, review, and insight generation.
  • Communicate complex methods and analysis results clearly to both technical and non-technical audiences internally and externally.


Essential Skills/Experience:
  • PhD or MS in epidemiology, biostatistics, data science, computer science, or related field such as health informatics with at least 3 years of relevant pharmaceutical industry or CRO experience.
  • Experience in RWE and familiarity with observational study methodologies. At least 5+ years of experience working directly with large, complex healthcare datasets (claims/EHR/registries) in quantitative research.
  • Demonstrated proficiency in R/Python and SQL. Expertise in developing FAIR-compliant data analytics pipelines supported by use of version control tools like GitHub and agile tools like JIRA.
  • Proven ability to build long-term and trusted partnerships with cross-functional stakeholders, manage conflicts and competing priorities to drive timely, high-quality outcomes.
  • Strong and effective communication skills, both oral and written. Demonstrated ability to articulate research questions and translate them into structured data analysis plans and technical workstreams that deliver measurable business value.
  • Proficiency in applying GenAI-based coding assistants (e.g., GitHub Copilot) and agentic tools to support project planning, data analysis, code review, or scientific documentation workflows.
  • A curious learner who continuously deepens disease knowledge, RWD expertise and explores emerging technologies and RWE methodologies to meet evolving stakeholder needs.


Desirable Skills/Experience:
  • Expertise in clinical data standards, medical terminologies, and controlled vocabularies used in healthcare data and ontologies (e.g., ICD-9/10, NDC, HCPCS).
  • Ability to lead and manage cross-functional data science projects with track record of peer-reviewed publications and/or regulatory submissions.
  • Demonstrated experience with building production grade analytics solutions using tools such as R (Shiny) or Python (Dash).
  • Excellent organizational and project management skills with demonstrated ability to prioritize and manage multiple tasks.
  • Experience with AI-empowered software and web application development in pharmaceutical, biomedical, or healthcare sectors.


Ready to make an impact? Apply now and be part of our journey to eliminate cancer as a cause of death!

The annual base salary (or hourly rate of compensation) for this position ranges from $144,648-$216,973. Our positions offer eligibility for various incentives-an opportunity to receive short-term incentive bonuses, equity-based awards for salaried roles and commissions for sales roles. Benefits offered include qualified retirement programs, paid time off (i.e., vacation, holiday, and leaves), as well as health, dental, and vision coverage in accordance with the terms of the applicable plans.

Date Posted
23-Sep-2026

Closing Date
08-Oct-2026

About AstraZeneca

AstraZeneca is a British-Swedish multinational pharmaceutical company that specializes in the research, development, and manufacturing of prescription drugs. The company was formed in 1999 through the merger of Astra AB and Zeneca Group plc. AstraZeneca's products are used to treat a wide range of medical conditions, including cancer, cardiovascular disease, respiratory disease, and diabetes. The company has operations in over 100 countries and employs more than 76,000 people worldwide. AstraZeneca is committed to developing innovative medicines that improve the health and well-being of people around the world.
Learn more about AstraZeneca
Size
83,100 employees
Market Cap
$211.5 billion
Industry
Net Income
$3.1 billion
Founded
1999
5 Year Trend
+10.2%
Revenue
$26.6 billion
NASDAQ

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