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Data Scientist; Machine Learning Engineer- CGM Algorithm Dev

Job in 4040, Basel, Kanton Basel-Landschaft, Switzerland
Listing for: Proclinical
Full Time position
Listed on 2026-01-01
Job specializations:
  • IT/Tech
    Machine Learning/ ML Engineer, Data Scientist, AI Engineer, Data Analyst
  • Engineering
    AI Engineer
Salary/Wage Range or Industry Benchmark: 100000 - 125000 CHF Yearly CHF 100000.00 125000.00 YEAR
Job Description & How to Apply Below
Position: Data Scientist (Machine Learning Engineer- CGM Algorithm Dev.)

Looking to uncover insights that could revolutionize the future of medicine and drive breakthroughs in patient care?

Proclinical is seeking a Data Scientist to contribute to the development and validation of innovative algorithms for Continuous Glucose Monitoring (CGM) systems. This role focuses on transforming complex physiological sensor data into meaningful clinical insights, integrating diverse datasets such as meal logs, insulin injections, and physical activity. The position requires a strong foundation in statistical analysis, machine learning, and creative problem-solving to evaluate and validate technical concepts effectively.

Please note that to be considered for this role you must have the right to work in this location or hold an EU passport.

Responsibilities
  • Design, develop, and validate predictive and analytical algorithms for CGM data.
  • Create robust code using advanced machine learning and statistical techniques to assess technical feasibility.
  • Model potential algorithmic approaches based on patient needs and real-world sensor data.
  • Process and manage heterogeneous time series data from medical devices, including data cleaning, imputation, transformation, and feature engineering.
  • Build and optimize machine learning models (e.g., XGBoost, Neural Networks) and write efficient, reproducible Python code for analysis and experimentation.
  • Provide technical guidance within an Agile team framework and collaborate with multidisciplinary teams to achieve project goals.
  • Present complex technical results and feasibility findings clearly to diverse stakeholders.
Key Skills and Requirements
  • Proficiency in Python and its core data science libraries (Pandas, Num Py, Scikit-learn, Tensor Flow/PyTorch, XGBoost/Light

    GBM).
  • Strong understanding of statistical principles, experimental design, and model validation techniques.
  • Experience in processing, analyzing, and modeling time series data from physical sensors or monitoring devices.
  • Background in Data Science, Machine Learning, Statistics, or a related quantitative field (Master's or PhD preferred).
  • Ability to work effectively in a collaborative, multidisciplinary environment.

If you are having difficulty in applying or if you have any questions, please contact Ashley Bennett at

If you are interested in applying to this exciting opportunity, then please click 'Apply' or to speak to one of our specialists please request a call back at the top of this page.

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