Senior Data Scientist (5+ Years ) Noida

Full-Time @Technip Energies
  • Noida, Uttar Pradesh, India View on Map
  • Post Date : December 5, 2025
  • Salary: ₹500,000.00 - ₹1,000,000.00 / Yearly
  • View(s) 43
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Job Detail

  • Job ID 62216

Job Description

Senior Data Scientist

Location:  Noida ,Uttar Pradesh, India

Experience: 5+ Years

Job Type: Full-time

Industry: Energy / Engineering (AI & Automation Hub)

About the Job 

The Senior Data Scientist will design, build, and deploy advanced AI/ML and Generative AI solutions to support digital transformation across Technip Energies. This role involves end-to-end development—from research and modeling to scalable deployment using modern AI/ML frameworks.

Key Responsibilities 

  • Develop and deploy ML/DL and Generative AI models including RAG, LLM fine-tuning, and multi-agent workflows.
  • Build and optimize deep learning pipelines using PyTorch, TensorFlow, JAX, and CUDA-based acceleration.
  • Work with LLM frameworks (LangChain, LangGraph, LlamaIndex) for agentic automation and tool integrations.
  • Implement MLOps workflows using MLflow, W&B, Kubeflow; automate model training, deployment, and monitoring.
  • Optimize models using quantization, pruning, ONNX, TensorRT, and cloud-scale GPU acceleration.
  • Deploy models as scalable microservices using Docker, Kubernetes, REST/gRPC APIs, and Azure ML.
  • Collaborate cross-functionally to convert business problems into AI use cases and deliver production-ready solutions.
  • Monitor model performance and drift using Azure Monitor, Prometheus, Grafana, and ELK stack.

Required Qualifications 

  • Master’s or Bachelor’s degree in Computer Science, Data Science, or related field.
  • 5+ years of hands-on experience in ML/AI with strong understanding of ML theory and algorithms.
  • Proven experience delivering end-to-end Generative AI solutions into production.
  • Strong expertise in Python, ML/DL frameworks, and cloud-based AI deployments.
  • Experience in building scalable AI systems using microservices, GPUs, and distributed environments.
  • Strong analytical, debugging, and problem-solving skills.

Preferred Skills 

  • Experience with fine-tuning LLMs (LoRA/QLoRA), diffusion models, and advanced prompt engineering.
  • Knowledge of graph-based RAG, vector databases (FAISS/Pinecone/Weaviate/Milvus).
  • Hands-on experience with GNNs, time-series forecasting models, and reinforcement learning.
  • Familiarity with Azure AI/ML services and modern observability frameworks.
  • Publications, open-source contributions, or patents showcasing applied research.

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