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Sarah ChoucheneSC

Sarah Chouchene

Computer Vision engineer researcher

€500/day
Grenoble, FR
3-7 years

Average response time: 1 hour

About Sarah

With over four years of experience in physics and artificial intelligence, I currently work as a research engineer at the Icube/GAIA Platform laboratory at the University of Strasbourg on the innovative Helpmewalk project. My expertise focuses on the application of machine vision, deeplearning, 3D reconstruction and complex physical systems, acquired in particular during my PhD at the IJL in partnership with APREX Solutions.
I have strong experience in fast imaging, visual tracking, anomaly detection and 3D spatial reconstruction from sensor and image data, applied to challenging environments such as nuclear fusion plasmas and industrial systems.
I collaborate with multidisciplinary teams to design and deploy advanced AI-based perception and modelling solutions, bridging experimental physics, computer vision and data-driven modeling, while promoting innovation and scientific excellence.
My goal is to contribute to projects that combine 3D perception, physics-aware AI and real-world applications to address major societal and technological challenges.
  • French

    Native or bilingual

  • English

    Fluent

  • German

    Basic

Remote only
Primarily works remotely

Experience

  • ICube,Plateforme GAIA, Université de Strasbourg,
    Research engineer
    BIOTECH
    March 2025 - March 2026 (1 year)
    Strasbourg, France
    • - Developed a deep-learning method PINNs based to estimate position and orientation of magnetic sensors from measurement data; implemented training/inferenceworkflows in Python/PyTorch with CUDA GPU acceleration, tracked experiments/metrics, versioned artifacts, and logged/shareable models with MLflow (model packaging + registry).
    • - Medical project: built a 3D shape reconstruction pipeline for custom orthosis design (pre-processing, segmentation, surface/mesh reconstruction, quality control) using OpenCV, scikit-image, Open3D; integrated outputs into clinical prototyping tools (CloudCom pare/ParaView).
    • - Applied teacher–student distillation to compress YOLO models for embedded/edge constraints.
    • - Performed simulation/experiment coupling and validation using Radia magnetic-field simulations; ensured reproducibility and maintainability with Git (clean code, version ing, documented pipelines).
    CUDA Git Python MLflow Deep Learning
  • InstitutJeanLamour (IJL),
    PhD student
    October 2020 - September 2024 (3 years and 11 months)
    Nancy, France
    • - and supervised deep-learning models for detection/segmentation of turbulent structures in ultra-fast sequences; built end-to-end data pipelines (pre-processing, labeling strategy, evaluation metrics, model monitoring).
    • - Developed unsupervised / anomaly-detection approaches to characterize electric arc defects and bubble dynamics, including feature extraction and clustering/representation learning; leveraged Anomalib and custom Python tooling.
    • - Implemented computer vision and diagnostic calibration workflows (e.g., Calcam, Ax Vision) and maintained reproducible analysis codebases across experiments.
  • InstituePlasmaPhysics
    Research Intern
    October 2021 - November 2021 (1 month)
    IPP, Greifswald, MV, Germany
    Experimental/data-analysis work on COMPASS tokamak diagnostics; processed experimental datasets and contributed to interpreta tion/validation of analysis results.

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Education

  • PhD student in Plasma Physics and Machine Vision
    University of Lorraine, Institut Jean Lamour
    2024
    PhD student in Plasma Physics and Machine Vision
  • Polytech Nancy
    2020

Skill set

Categories