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Choudhary Suresh KumarCS

Choudhary Suresh Kumar

Data Scientist / LLM / AI Engineer

250 €/jour
Paris, FR
8-15 ans

Délai de réponse moyen : 1h

À propos de Choudhary

Data Scientist / LLM / Generative AI Engineer with 8+ years of experience in
GenAI, LLMs, NLP, and Deep Learning, specializing in RAG pipelines,
prompt engineering, AI agents, and production-grade AI systems.
Expert in LLM fine-tuning (LoRA/QLoRA), semantic search, embed-
dings, and LLM evaluation, with strong experience in end-to-end
ML/LLM pipelines from PoC to scalable deployment on Microsoft
Azure, Amazon Web Services, and Google Cloud Platform.
Proven track record in risk modeling, fraud detection, and customer
analytics, focusing on scalable system design, AI safety, and busi-
ness impact.
KEY SKILLS
• Generative AI & LLMs: Prompt Engineering (Zero-shot, Few-shot,
Chain-of-Thought), Retrieval-Augmented Generation (RAG), LLM
Fine-tuning (LoRA, QLoRA), RLHF, Context Optimization, Hallucina-
tion Mitigation, LLM Evaluation (RAGAS, BLEU, ROUGE, Faithfulness
Metrics)
• Frameworks & Libraries: LangChain, LlamaIndex, Hugging Face
Transformers, PyTorch, TensorFlow, Scikit-learn
• Vector Databases & Search: FAISS, Pinecone, Weaviate, Semantic
Search, Embedding Models, Approximate Nearest Neighbor (ANN)
Programming & Development: Python, SQL, NumPy, Pandas, REST
APIs, FastAPI, Async Programming
Cloud & MLOps: Microsoft Azure (Azure OpenAI, Azure ML), Amazon
Web Services (SageMaker, Bedrock), Google Cloud Platform (Vertex
AI), Docker, Kubernetes, CI/CD, MLflow, Model Deployment & Moni-
toring
System Design & Architecture: End-to-End LLM Application De-
sign, Scalable RAG Pipelines, Prompt Pipelines, Context Manage-
ment, Cost Optimization, API Integration
AI Safety & Governance: Prompt Injection Prevention, Data Privacy,
Content Filtering, Responsible AI Practices
  • Anglais

    Capacité professionnelle complète

  • Allemand

    Capacité professionnelle limitée

  • Français

    Notions

Accepte de travailler sur site
Paris (jusqu’à 50 km)

Expériences

  • SFN Germany
    Senior AI engineer
    avril 2025 - Aujourd'hui (1 an et 2 mois)
    Designed and developed a production-grade Retrieval-
    Augmented Generation (RAG) conversational AI system for
    processing sports data, guidelines, and real-time news tailored
    for B2B applications.
    • Engineered scalable LLM pipelines using LangChain, FastAPI, and
    vector databases to enable semantic search, context-aware re-
    sponses, and high retrieval accuracy, significantly improving re-
    sponse relevance and system performance.
  • Hawkscode
    Senior Data Scientist
    janvier 2017 - septembre 2020 (3 ans et 8 mois)
    Developed credit risk and fraud detection models using Python,
    Spark, and Amazon Web Services, improving accuracy by 20%.

    Built scalable ML pipelines with focus on reproducibility, explain-
    ability, and production deployment.

    Designed customer segmentation models and executed A/B test-
    ing for targeted marketing optimization.

    • Implemented data drift detection and automated retraining
    pipelines to ensure model stability.

    • Developed batch and real-time scoring systems using Spark, SQL,
    and Databricks and mentored junior team members.
  • Applied Data Finance
    Data Scientist
    BANQUE & ASSURANCES
    août 2015 - janvier 2017 (1 an et 5 mois)
    Built and deployed risk and fraud detection models using transac-
    tional data exceeding 50M records with Scikit-learn, Pandas, AWS
    and MySQL.
    • Implemented CI/CD pipelines and data-driven experimentation for
    scalable production ML
    Python MySQL Machine learning Data science Spark

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Formations

  • Computer Science
    Indian Institute of Technology , IIT Kanpur
    2014

Compétences (36)

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