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Leonardo Gutierrez GomezLG

Leonardo Gutierrez Gomez

Senior Data Scientist/Engineer, PhD.

710 €/jour
Paris, FR
8-15 ans

Délai de réponse moyen : 1h

À propos de Leonardo

Hola, this is Leonardo

🚀 I help companies build and deploy production-ready AI systems that unlock the full potential of their data.

🔹 Full-Stack Expertise: I combine Data Science & Data Engineering skills, leading teams with a results-driven mindset to deliver impactful AI solutions.

🔹 End-to-end AI Support: From designing AI strategies, ETL pipelining, ML modeling, and evaluation to deploying ML models at scale.

🔹 LLM & NLP Focus: Currently specializing in Large Language Models (LLMs) to tackle real-world NLP challenges. Check out my Medium blog articles @lgsquare

🎯 With 10+ years of experience across Europe, the US, and LATAM, I’ve helped businesses in finance, microelectronics, energy, automotive, research, and education harness AI to grow their revenue.

📚 I’ve authored/co-authored multiple AI & ML papers with 100+ citations in peer-reviewed journals and conferences, where I’ve also been a speaker.

By working with me, you can trust that I will deliver a high-quality solution while ensuring alignment with your business constraints.

Feel free to reach out if you have any questions about my expertise or experience.

Hasta pronto!
  • Espagnol

    Bilingue ou natif

  • Français

    Bilingue ou natif

  • Anglais

    Capacité professionnelle complète

  • Luxembourgeois

    Notions

Accepte de travailler sur site
Paris (jusqu’à 50 km), Lille (jusqu’à 30 km), Nancy (jusqu’à 30 km), Metz (jusqu’à 50 km), Strasbourg (jusqu’à 30 km)

Expériences

  • BNP Paribas
    Data Scientist Consultant
    BANQUE & ASSURANCES
    février 2024 - janvier 2025 (11 mois)
    Luxembourg, Luxembourg
    Supporting the DataLab team in developing AI solutions in the banking sector.

    - Contributed to the development of Generative AI (GenAI) applications, utilizing advancements in open-source Large Language Models (LLMs) and Retrieval-Augmented Generation (RAG) architectures with private banking data.

    - Designed and implemented evaluation and monitoring frameworks for GenAI models to ensure reliability, accuracy, and compliance in production environments.

    - Developed and optimized ETL pipelines to streamline transaction data flows, enabling the creation of effective machine-learning models for fraud detection in AML/KYC use cases.

    - Led the RD&I workstream to develop cutting-edge solutions in ML monitoring (drift detection) in collaboration with UniLux (SNT) researchers.

    - Supervised the development of Recommender Systems to enhance marketing strategies and drive customer engagement.
    LLMs Retrieval Augmented Generation Fraud detection R&D
  • Goodyear
    Data Scientist, Principal Investigator
    AUTOMOBILE
    novembre 2021 - décembre 2023 (2 ans et 1 mois)
    Colmar-Berg, Luxembourg
    Conducting applied research in the Data-Driven Engineering team, providing cutting-edge solutions for the automotive industry with applications in virtual tire design and tire intelligence products.

    - Responsible for the planning, coordination, execution, deployment, and monitoring of data-driven engineering projects involving a cross-functional global team from the USA and Europe.

    - Developing ML models to support advanced tire simulation capabilities leveraging multi-fidelity data.

    - Creation of novel algorithms combining multi-performance optimization, FEA simulations, and ML to support the virtual tire design process.

    - Developing ETL pipelines to process semi-structured data by ingesting millions of records from multiple sources to the cloud data lake storage within a CI/CD process.

    - Exploiting large tire sensor data to build and deploy ML models via REST-API systems.

    - Communication of project status, milestones, and challenges to team members, managers, and senior directors.
    Python Amazon Web Services Data science CI/CD Leadership d’équipe Machine learning Deep Learning Teamwork Multilingue Linux Research and Development (R&D) Extraire, transformer, charger (ETL) Communication Gestion de projet Data mining TensorFlow keras Scikit-learn
  • Luxembourg Institute of Science and Technology (LIST)
    Data Scientist, Applied Researcher
    HIGH TECH
    novembre 2019 - novembre 2021 (2 ans)
    Esch-sur-Alzette, Luxembourg
    Performing applied research to develop tools and solutions in the automotive industry, leveraging data mining, machine learning and optimization at Goodyear and LIST partnership.

    - Providing input to the definition of research concepts in collaboration with LIST and Goodyear.

    - Designing and developing a similarity algorithm to compare high-dimensional tabular data
    containing mixed-type (numerical and categorical) variables.

    - Developing kernel-based ML algorithms to predict multiple tire-related performances.

    - Developing a multi-performance optimization engine leveraging data-driven objectives and
    physical constraints.

    - Contributing to knowledge generation and dissemination of results as technical reports, research
    papers, presentations, and software packages.
    Python notebooks POC Stratégie de communication Communication Recherche et développement Optimization Data science Machine learning Scikit-learn keras

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Formations

  • PhD in Applied Mathematics
    Université Catholique de Louvain
    2019
    Dissertation: Machine Learning on Complex Networks (large scale graphs): Dynamical Fingerprints, Embeddings and Feature Engineering. https://dial.uclouvain.be/pr/boreal/object/boreal:222927
  • Master of Science In Industrial and Applied Mathematics
    University of Grenoble Alpes - ENSIMAG
    2015
    This is a master's program with a partnership between the Université de Grenoble Alpes and ENSIMAG. Master 2 in Applied Mathematics with a Major in Data Science. Website: https://msiam.imag.fr/m2siam/#data_science

Compétences

Catégories