À propos de Jacques
- Computer Vision : détection d'objects, segmentation, régression, classification, GAN, Vision-Transformers et models de diffusion.
- GenAI : LLM/RAG, NLP, Knowledge Graphs, ChatBot
- Forecasting, Mathématiques Financières
- Déploiement, mise en production et maintenance des modèles (MLOps, CI/CD, LLMOps)
- Création de pipeline complexe de données et mise en production
- Automatisation et parallélisation de code
- Remote Sensing : données géospatiales, images satellites radars (SAR) et optiques, GIS.
- Langage de programmation : Python, PySpark, C, C++, Java, R, SQL, SPARQL, Bash (Unix shell), VBA
- Data Science / ML : Python, PyTorch, TensorFlow, Spark, Elasticsearch, Lightning, ClearML, OpenCV, Scikit-learn, LlamaIndex, LangChain, NEO4J, Multiprocessing, NumPy, SciPy, Pandas, Matplotlib, Selenium, AutoML, H2O, Flask API
- Generative AI : ChromaDB, Azure, AWS Bedrock, NVIDIA NIM, OpenAI Services
- Software / Cloud : AWS Ecosystem, Git, Jira, Azure, GCP, Docker, Kubernetes, Jupyter, Eclipse, VSCode, Travis CI (DevOps)
- Scrapping / NLP : NLTK, Selenium, BeautifulSoup
- GIS : QGIS, ArcGis
Français
Bilingue ou natif
Anglais
Bilingue ou natif
Espagnol
Capacité professionnelle complète
Expériences
- SARP - VEOLIAData Scientist Freelance - Computer Vision, GenAIENERGIEavril 2024 - Aujourd'hui (2 ans et 2 mois)- Development of Real-Time Multi-Object anomaly detection system for wastewater networks (End-to-End POC)
- ASTERRADATA SCIENTIST | DEEP LEARNINGHIGH TECHnovembre 2022 - mars 2024 (1 an et 5 mois)
- Leading EarthWork AI product : Assess underground moisture conditions for multiple applications including PoC, MVP, Product-market fit - collaboration with different teams and executive levels
- R&D of SOTA Deep Learning algorithms applied on Synthetic-aperture Radar satellite imagery and geospatial datasets : Self-Supervised Learning (Vision Transformers, Masked Autoencoders, UNets), Survival Analysis
- Successfully developed the most accurate AI algorithm for Soil Moisture estimation at ASTERRA, now sold as part of the new SaaS
- Albo ClimateData Scientist | Deep Learning EngineerENVIRONNEMENToctobre 2021 - juillet 2022 (10 mois)
- Responsible for developing Deep Learning and Machine Learning models for predicting carbon sequestration maps (Above Ground Biomass, Soil Organic Carbon) from optical and SAR satellite imagery for the purpose of creating Carbon Credits
- Geospatial data engineering, analysis, display, development and improvement of SOTA DL models (conditional GAN, DeepLabv3+, Ensemble methods), ETL construction
- Successfully developed the best models for Soil Organic Carbon and Above Ground Biomass estimation, main company product
Avis
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Formations
- Master of Science - MS (280), Applied Mathematics Statistics, Data Science & Financial MathematicsUniversité Paris-Dauphine, PSL2021Master of Science - MS (280), Applied Mathematics Statistics, Data Science & Financial Mathematics
- MS Exchange Student, Artificial Intelligence & Data ScienceUniversiteit Maastricht2020MS Exchange Student, Artificial Intelligence & Data Science