Healthcare Data Scientist (RWD)

Medeloop

$130K — $155K *
Healthcare
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • PhD or Master's degree with 5+ years in a quantitative-health field, like biostatistics or epidemiology.
  • Strong grounding in real-world data/evidence methodology and domain experience in health-related fields.
  • Ability to answer complex healthcare questions using SQL and Python; knowledge of R or SAS is a plus.
  • Experience with large healthcare datasets, including claims and EHR data.
  • Proven track record of producing rigorous, research-grade analyses.
  • Hands-on experience in AI/ML, including reviewing code and model outputs.
  • Strong communicator with customer-facing experience preferred.

Responsibilities

  • Build and execute real-world evidence analyses to solve complex healthcare problems.
  • Write scalable SQL and Python code to define cohorts and model patient journeys.
  • Apply clinical and statistical judgment to analyze treatment patterns and outcomes in observational data.
  • Collaborate closely with AI research agents to enhance analytical outputs and improve research question translation.
  • Work with customer institutions to scope research questions and expand platform use.
  • Clearly communicate analyses, assumptions, and limitations to stakeholders in an understandable way.
  • Contribute to the development of next-generation AI-driven clinical research tools.

Benefits

  • Opportunity to influence AI systems and real-world healthcare impact.
  • Hands-on collaboration with internal AI and product teams as well as external research institutions.
  • Exposure to a wide range of healthcare datasets and real-world evidence applications.
  • Engagement in a role that combines data science with clinical and practical research.
  • Positioning in a cutting-edge healthcare technology space focused on meaningful outcomes.
Full Job Description
We are seeking a Healthcare Data Scientist (Real-World Evidence) to answer complex healthcare and biopharma questions using large-scale real-world data and help shape the next generation of AI-powered clinical research. This is a hands-on role that combines rigorous real-world evidence analysis with deep collaboration across product, AI, and customer teams.

Internally, you will partner closely with Medeloop's AI research and product teams to design and execute real-world evidence analyses, evaluate the performance of our clinical research agents, and apply your scientific expertise to improve how our platform reasons about healthcare data. Externally, you will serve as an embedded data scientist for our partner institutions, working directly with clinicians, researchers, and life sciences organizations to scope research questions, deliver high-quality evidence, drive adoption of the platform, and expand each customer's use of Medeloop over time. This is a highly technical role centered on analytical reasoning, statistical rigor, and scientific problem-solving. Your work will directly influence both the intelligence of our AI systems and the real-world impact they create for healthcare and life sciences organizations.

Role & Responsibilities
  • Build and execute real-world evidence analyses to answer complex healthcare and biopharma questions using large-scale claims and EHR data.
  • Write high-quality, scalable code (SQL and Python; R also welcome) to define cohorts, model patient journeys, and generate rigorous, reproducible research outputs.
  • Apply clinical and statistical judgment to evaluate treatment patterns, utilization, and outcomes in observational data, reasoning carefully about bias and limitations.
  • Work directly with Medeloop's AI research agents, reviewing and challenging their analytical outputs, and partner with AI and product teams to improve how agents translate research questions into high-quality analyses.
  • Partner with customer institutions: scope their research questions, deliver evidence, drive adoption, and help expand how each institution uses Medeloop.
  • Communicate analyses, assumptions, and limitations clearly to internal teams, scientific stakeholders, and customers, translating technical findings into plain-language insight.
  • Help shape the analytical foundations and evaluation frameworks behind the next generation of AI-driven clinical research tools.
Requirements
  • PhD, or a Master's degree minimum plus 5+ years of industry experience, in a quantitative-health field (biostatistics, epidemiology, clinical trials, public health, health informatics, or health economics). PhD preferred; strong industry experience can substitute for the doctorate.
  • Strong grounding in real-world data/evidence (RWD/RWE) methodology, with domain experience in biostatistics, epidemiology, clinical trials, or public health.
  • Proven ability to answer complex clinical or biopharma questions using SQL and Python, plus statistical software (R and/or SAS).
  • Experience with large healthcare datasets, such as claims or EHR data (clinical coding systems, ICD/CPT/RxNorm), assumed to come with an RWE background.
  • Track record of producing rigorous, research-grade analyses, reports, or publications; comfort working with messy, high-dimensional data.
  • AI/ML experience required, with clear evidence of hands-on use; comfortable reviewing code and reasoning about model outputs.
  • Strong communicator; customer-facing experience preferred (trainable for the right analytical candidate).
Nice to Have
  • Experience working directly with customers and in a sales capacity.
  • Industry background strongly preferred over consulting (industry candidates preferred over consultants).

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