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Hadi AskariHA

Hadi Askari

Senior ML Engineer | Production RAG & GenAI System

EUR 560/Tag
Paris, FR
3-7 Jahre

Durchschnittliche Reaktionszeit: 24h

Über Hadi

ML engineer with 6+ years of experience designing and deploying production GenAI systems: RAG pipelines, LLM fine-tuning, ML APIs, and evaluation infrastructure.

I cover the full stack — from data pipelines and model training to deployed APIs and production monitoring.

Core expertise:
— RAG systems (LangChain, LangGraph, vector search, Elasticsearch)
— Domain-specific LLM fine-tuning
— LLM evaluation and tracing with Langfuse
— GenAI APIs on AWS (EC2, S3, SageMaker)
— Multi-agent workflows (LangGraph, MCP, n8n)

Recent projects: full GenAI feedback analysis system at Feedier (Lille), production recommendation engine at Nextory (Paris).

Available for freelance missions in Île-de-France and fully remote.
Immediately available.
  • Englisch

    Muttersprachlich oder zweisprachig

  • Französisch

    Konversationssicher

Vor Ort möglich
Paris (bis zu 50 km)

Projekt- und Berufserfahrung

  • Feedier
    ML/AI engineer
    Oktober 2024 - Januar 2026 (1 Jahr und 3 Monate)
    Lille, France
    • Designed and deployed LLM-powered systems for customer feedback analysis, including information extraction, summarization, and insight generation.
    • Built ML models (clustering, classification, sentiment analysis) to enhance LLM outputs. Implemented RAG pipelines with Elasticsearch and vector search to deliver contextual, high-precision responses.
    • Fine-tuned domain-specific LLMs, improving relevance and accuracy for customer-experience use cases.
    • Architected stateful agents using LangGraph and MCP servers, ensuring production reliability via LangSmith tracing.
    • Ran systematic LLM benchmarking and evaluations focused on accuracy, latency, and reliability across model families.
    • Architected and deployed AI-driven automations using n8n, integrating LLMs and external APIs to streamline operational workflows.

    Tech Stack: Python, PyTorch, TensorFlow, scikit-learn, langChain, Langfuse, LiteLLM, Elasticsearch, MySQL, RAG, MCP Server, LLM fine-tuning, Prompt Engineering, EC2, S3
    Python LLM artificial intelligence RAG AI Automation
  • Nextory,
    Data Scientist (Recommendation Engine)
    UNTERHALTUNG & FREIZEIT
    September 2022 - September 2024 (2 Jahre)
    Paris, France
    • Built and deployed ML models for user behavior prediction and personalized content ranking, contributing directly to engagement and recommendation quality.
    • Developed and maintained Flask-based APIs powering the recommendation engine, and managed data storage across BigQuery, PostgreSQL, and MongoDB.
    • Engineered a hybrid retrieval system combining vector search (embeddings) and string-matching to deliver highly relevant content recommendations.
    • Applied strong Python and ML expertise (scikit-learn, PyTorch/TensorFlow) for model development, evaluation, and iterative improvement.
    Python Machine learning Data science Datenbankmanagement (z. B. SQL, NoSQL) artificial intelligence
  • NAISTER
    Data Scientist, (NLP/Machine Learning)
    März 2019 - August 2022 (3 Jahre und 5 Monate)
    Paris, France
    • Leveraged AI/ML to develop an impactful Content Strategy with cross-functional teams. Direct experience with state-of-the-art LLM architectures, including GPT-3 and Transformer-based models (BERT, RoBERTa).
    • Deployed and trained deep neural networks using AWS SageMaker for critical scoring applications.
    • Built a Video Text Retrieval system, aligning with Information Retrieval requirements.
    • Developed high-impact Ranking and Recommendation Systems for e-commerce.
    • Experience with AWS cloud infrastructure, including SageMaker, Lambda, DynamoDB, S3, and EC2 for scaling ML solutions.
    AWS SageMaker Machine learning

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Ausbildung und Abschlüsse

  • M.Sc. in
    ESC Rennes
    2019
    M.Sc. in
  • M.Sc. in
    Isfahan University
    2006
    M.Sc. in

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