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Sr. Data Scientist / AI ML

Sr. Data Scientist / AI ML

Tata Consultancy Services
8-10 Years
Early Applicant
  • Posted 8 days ago
  • Be among the first 20 applicants

Job Description

Job Description

About the Unit:

TCS IAE is redefining the future of industry by embedding intelligence across engineering, manufacturing, asset, and service value chains. Powered by AI, connected ecosystems, and autonomous operations, it transforms insights into action—creating self-optimising, resilient, and intelligent enterprises at scale. By seamlessly converging the physical and digital worlds, TCS IAE is enabling a new era of AI-first enterprises where systems continuously learn, adapt, and evolve—driving measurable outcomes and shaping how industries operate for the future

Role: Sr. Data Scientist / AI ML

Required Technical Skill Set: AI ML, Edge AI

Desired Experience Range: 8+ yrs

Location of Requirement: Pan India

Must-Have

  1. 5+ years of hands-on development experience in AI/ML.
  2. Strong knowledge of ML libraries (TensorFlow Lite, PyTorch Mobile, ONNX).
  3. Experience with edge hardware platforms (e.g., Raspberry Pi, Nvidia Jetson, etc..).
  4. Proficient in Python and C/C++.
  5. Familiarity with performance optimization techniques for models on edge.
  6. Experience with REST APIs, messaging protocols, or low-latency data streaming.
  7. Ability to perform predictive and statistical analysis from different data source
  8. knowledge and hands-on experience of building and deploying AI models on edge devices.
  9. knowledge of embedded systems, microcontrollers, or low-power compute devices.
  10. Experience with containerization (Docker), orchestration (Kubernetes), and CI/CD pipelines
  11. Experience with Image Processing, Computer Vision, Pattern Recognition, Machine Learning and Linear algebra.
  12. knowledge and exposure to model optimization techniques.
  13. Experience with AI accelerator frameworks

Good-to-Have

  1. Familiarity with OpenCV, YOLO, or MobileNet for vision tasks.
  2. Knowledge of TinyML or microcontroller-based AI inference.
  3. Exposure to MLOps tools and versioning (MLflow, DVC).
  4. Understanding of security practices in edge deployments.
  5. Experience with edge analytics, anomaly detection, or predictive maintenance use cases.
  6. Exposure to deployment tool-chain like Intel EII, Nvidia Deep Stream, Qualcomm AI Hub, etc....
  7. Excellent communication and documentation skills
  8. Exposure to popular platforms such as Azure, AWS.

Responsibility of / Expectations from the Role

  1. Build and optimize AI/ML models for edge deployment.
  2. Develop edge inference pipelines using lightweight frameworks.
  3. Optimize models for resource-constrained environments (quantization, pruning).
  4. Integrate AI models into embedded or IoT platforms.
  5. Collaborate with cross-functional teams on data collection, preprocessing, and annotation.
  6. Implement software for real-time processing and decision-making at the edge.

More Info

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Key Skills

Edge AI

AI accelerator frameworks

MLflow

ONNX

TensorFlow Lite

TinyML

DVC

YOLO

MobileNet

PyTorch Mobile