Research Scientist (x/f/m)

EngineersOfAI

Paris

Sur place

EUR 90 000 - 130 000

Plein temps

14 jours+

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Résumé du poste

Doctolib is seeking a Research Scientist to join the Doctolab team, aiming to build calibrated, clinically reliable models from health data at scale. The role blends fundamental research with product impact, publishing results and deploying models used by doctors and patients across Europe.

We value a PhD in ML or related fields, strong publication records, and proficiency in Python/PyTorch. Healthcare data experience is a plus; early-career and experienced researchers are welcome.

Qualifications

  • PhD in ML, statistics, CS or related field (or Master’s with strong research).
  • First-author publications at leading venues or comparable medical informatics venues.
  • Proficiency in Python and a DL framework (PyTorch) with trained models.
  • Experience with healthcare or medical data is a plus.

Responsabilités

  • Build accurate, calibrated, clinical-grade models from health data at scale.
  • Publish results and evolve lab research into products used by clinicians.
  • Collaborate with data science and product teams to translate research to features.
  • Lead and participate in open collaborations, challenges, benchmarks, and releases.
  • Help define the lab's research agenda and alignment with Doctolib.
  • Present and defend research questions and their impact on patients and practitioners.

Connaissances

PhD in ML
Python & PyTorch
Research leadership
Strong publication record

Formation

PhD in machine learning or related field
Master's with significant research experience

Outils

PyTorch
Python
Hugging Face / ML libraries

Description du poste

Set a new pulse for healthcare!

We are looking for a Research Scientist to join the Doctolab team (Doctolib Clinical AI Research Lab).

Your mission is to build accurate, well-calibrated, and clinically reliable models of patient health, learned from health data at scale. The work is both fundamental and applied: you publish, and your models reach products used by doctors and patients. Doctolib is used by around 450,000 health professionals and 90 million people across Europe, and research that succeeds in the lab can be deployed at that scale.

Working at Doctolib means contributing to one of Europe\'s leading health-tech companies, and seeing your work improve care for patients and practitioners.

How we work

Doctolab is a research lab in its founding phase, so researchers have real influence over its direction and its priorities. We work closely with the data science and product teams, and we stay close to the data.

We expect researchers to explain why a question matters, not only why it is open. Projects are chosen on both scientific ambition and what they change for patients and practitioners. The work suits researchers who want to see their results used.

The questions we raise are open problems in machine learning: world models that predict the consequences of an action, calibration and uncertainty, causal inference from observational data, multimodal sequence modelling, orchestration between model capabilities. Results on these questions hold well beyond healthcare. We are in a strong position to work on them: we have the data to learn a world model from, a clinical use case that defines success, and the engineering path to put it in front of practitioners and patients and learn from what comes back. Experience with healthcare or medical data is a plus but not required. Both early-career and experienced researchers are welcome.

What you\'ll do

Your responsibilities include but are not limited to:

  • Build a world model of patient health: how a health state evolves over time and changes in response to care, learned from observational data with the confounding accounted for
  • Build evaluation methods that test calibration, robustness, interpretability, privacy, and generalization outside the training distribution
  • Work with the data science and product teams to turn research results into clinical-grade features
  • Publish at leading machine learning and health informatics venues
  • Engage the international health and machine learning community through open collaboration: data challenges, shared benchmarks, and open-source releases
  • Help define the lab\'s research agenda and its working relationship with the rest of the company
Who you are

Before you read on: if you don\'t have the exact profile described below, but you feel this job description matches your skill set, we still encourage you to apply.

You'll be a great fit if you:

  • Have a PhD in machine learning, statistics, computer science, or a related field, or a Master\'s degree with significant research experience
  • Have depth in one or more of: representation learning and self-supervised learning; large language models and multimodal modelling; causal inference and causal discovery from observational data; temporal and dynamic modelling; calibration and uncertainty quantification; agentic systems and orchestration; evaluation and benchmarking; privacy auditing of machine learning models
  • Have first-author publications at leading venues such as NeurIPS, ICML, ICLR, ACL, EMNLP, or comparable medical informatics venues
  • Have driven your own research, from choosing the question to publishing the result
  • Are proficient in Python and a deep learning framework such as PyTorch, and have trained models yourself
  • Are comfortable working with large and imperfect real-world data
  • Can explain why a research question matters, scientifically and for patients or practitioners
  • Are fluent in English, the working language of the lab

It would be fantastic if you:

  • Have experience with healthcare or medical data, clinical text, or electronic health records
  • Have taken research models
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