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Data Scientist CGM Algorithm Development

Job in 4040, Basel, Kanton Basel-Landschaft, Switzerland
Listing for: Experis Schweiz
Full Time position
Listed on 2025-12-06
Job specializations:
  • IT/Tech
    Machine Learning/ ML Engineer, Data Scientist, AI Engineer, Data Analyst
Salary/Wage Range or Industry Benchmark: 80000 - 100000 CHF Yearly CHF 80000.00 100000.00 YEAR
Job Description & How to Apply Below
Position: Data Scientist for CGM Algorithm Development

Data Scientist for CGM Algorithm Development

On behalf of our Pharmaceutical client we are recruiting for a Data Scientist.

The Data Scientist will drive the feasibility evaluation, prototyping, design, and validation of novel algorithms for Continuous Glucose Monitoring (CGM) systems. This role is instrumental in translating complex physiological sensor data into accurate, clinically relevant insights, including integrating and interpreting diverse sensor and log data related to meal, insulin injections and physical exercise. This role requires a strong blend of statistical rigor, machine learning expertise, and creative problem-solving to quickly evaluate and prove the technical viability of promising clinical concepts.

The perfect candidate has minimum of 5+ years of hands‑on experience as a Data Scientist or Machine Learning Engineer and speaks fluent English. Additionally we are looking for someone who has experience or robust academic background (Master or PhD is highly desirable) in Data Science, Machine Learning or Statistics.

Tasks & Responsibilities:

  • Algorithm Design & Prototyping:
    Design, develop, and validate predictive and analytical algorithms for CGM data. Develop robust code using advanced ML and statistical techniques to prove technical feasibility.
  • Feasibility & Ideation:
    Understand patient needs and creatively model potential algorithmic approaches using real-world sensor data.
  • Data Pipeline & Feature Engineering:
    Apply expertise in processing and managing heterogeneous time series data originating from medical devices. Execute rigorous data cleaning, imputation, transformation, and sophisticated feature engineering.
  • Technical Execution & Modeling:
    Build and optimize machine learning models (e.g., XGBoost, Neural Networks, etc.). Write high-quality, efficient, and reproducible Python code for data analysis, modeling, and experimentation.
  • Collaboration:

    Provide technical guidance within an Agile team framework to junior data science colleagues. Work effectively within a multidisciplinary, distributed team to translate project goals into actionable data science tasks.
  • Communication & Reporting:
    Synthesize complex technical results and present clear feasibility findings to diverse stakeholders.

Must Haves:

  • Minimum of 5+ years of hands‑on experience as a Data Scientist or Machine Learning Engineer.
  • Demonstrated experience or robust academic background (Master or PhD is highly desirable) in Data Science, Machine Learning, Statistics, or a related quantitative field.
  • Strong Statistical Foundation:
    Solid grasp of statistical principles, experimental design, and model validation techniques.
  • Advanced Python Proficiency:
    Strong proficiency in Python and its core data science ecosystem:
    Pandas, Num Py, Scikit-learn, Tensor Flow/PyTorch, and XGBoost/Light

    GBM.
  • Time Series Data:
    Practical experience with the processing, analysis, and modeling of time series data from physical sensors or monitoring devices.

Nice to Have:

  • Medical Domain Knowledge:
    Prior experience working with medical data, specifically in diabetes management (CGM/BGM), exercise physiology, or clinical nutrition data.
  • Regulated Environment:
    Familiarity with the requirements and processes for software development in a regulated medical device environment.
  • Big Data Tools:
    Experience with distributed computing frameworks like PySpark for handling very large datasets.

If you are interested in this opportunity please apply with a copy of your CV.

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