À propos de François
Français
Bilingue ou natif
Anglais
Capacité professionnelle complète
Expériences
- BEA Sensors EuropeDigital Signal Processing EngineerHIGH TECHseptembre 2023 - Aujourd'hui (2 ans et 9 mois)Liège, BelgiqueDSP and AI Algorithms for intelligent Radar and LiDAR sensing systemsDesign, development, simulation and validation of real-time detection, tracking and classification algorithms combining signal processing and machine learning.Selected contributions:• Design and development of real-time detection and tracking algorithms for sensor data• Algorithm simulation, validation and performance evaluation• Development of classification models for people and vehicle detection• Deployment of deep learning models on embedded hardware (Edge AI / TinyML)• Implementation of high-performance algorithms in Python and C• Development of Python APIs and web applications for testing and visualization• Development of ML pipelines and MLOps workflows (MLflow, CI/CD)• Feature engineering and statistical modeling for sensor dataSensor modalities:CW radar | FMCW/mmWave radar | LiDARTech stack:Python | C | TensorFlow | LiteRT | scikit-learn | MLflow | Docker | Azure DevOps | Git
- Radiomics.bio - BelgiumR&D Team LeadBIOTECHNOLOGIESjuin 2022 - septembre 2023 (1 an et 3 mois)Liège, BelgiqueLeadership of medical AI research projectsLed a multidisciplinary R&D team (AI scientists and mathematical engineers) developing machine learning solutions for medical imaging applications.Key contributions:• Technical leadership of AI research projects in medical imaging• Coordination of R&D activities and project roadmaps• Mentoring and supervision of AI scientists and engineers• Contribution to EU-funded innovation and research programs• Collaboration with cross-functional teams including researchers and cliniciansTech stack:Python | TensorFlow | PyTorch | ITK | SimpleITK | VTK | scikit-image | pydicom | MLflow | Docker | Git
- Radiomics.bio - BelgiumAI ScientistBIOTECHNOLOGIESfévrier 2021 - juin 2022 (1 an et 4 mois)Liège, BelgiqueMachine learning for medical imaging and radiomicsDevelopment of machine learning models and advanced radiomic features for diagnosis support, outcome prediction and treatment response analysis using CT, MRI and PET imaging data.Key contributions:• Design of classification and segmentation models for medical images• Development of novel radiomic features and statistical models• Feature engineering for high-dimensional medical datasets• Explainable AI analyses, model validation and performance evaluation• Development of ML pipelines for medical data analysisTech stack:Python | TensorFlow | PyTorch | ITK | SimpleITK | VTK | scikit-image | pydicom | MLflow | Docker | Git
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Formations
- Master of ManagementLouvain School of Management2022Master's degree in General Management
- Master's degree, Electrical, Electronics and Communications EngineeringUniversity of Liège2020Master's degree, Electrical, Electronics and Communications Engineering