AI ML Lead (Noida)

AI ML Lead (Noida)

05 Sep
|
Tata Consultancy Services
|
Noida

05 Sep

Tata Consultancy Services

Noida

AI / ML Lead

Designation: AI / ML Lead

Educational Qualification:

- B.Tech / M.Tech / M.S. / Ph.D. in Computer Science, Artificial Intelligence, or related

fields.

- Advanced certifications in AI/ML (e.g., TensorFlow Developer, AWS ML Engineer)

preferred.

- Research papers, case studies, or significant open source contributions(are preferred)

Experience:

- 710 years of overall skilled experience in AI/ML solution development.
- At least 4–5 years leading AI/ML model implementation teams.
- Proven experience delivering end-to-end AI/ML use cases from prototyping to production

deployment.

Key Responsibilities:

1. Lead the design, prototyping, and deployment of AI/ML models for NeGD’s Unified AI

Delivery Team.

2. Develop reusable model components for classification, prediction, summarization, or

image analytics.

3. Evaluate open-source and proprietary AI models for fitment to government datasets.

4. Define model development standards, performance benchmarks, and testing protocols.

5. Collaborate with MLOps teams to automate model deployment, retraining, and monitoring

workflows.

6. Guide Data Scientists in experiment setup, hyperparameter tuning, and model validation.

7. Conduct technical reviews and ensure all models meet Responsible AI and data privacy

requirements.

8.



Mentor engineering teams in ML algorithms, model evaluation techniques, and ethical AI

practices.

Technical Competencies:

- AI/ML Expertise: Deep learning architectures (CNN, RNN, Transformers), reinforcement

learning, transfer learning, and foundation model fine-tuning

- Model Development: TensorFlow, PyTorch, Hugging Face, MLflow, advanced

hyperparameter tuning, and neural architecture search

- Programming Languages: Python (expert level), R for statistical modeling, C++ for

performance optimization, CUDA for GPU programming

- Model Optimization: Quantization, pruning, knowledge distillation, ONNX, TensorRT,

and inference optimization techniques

- Cloud AI Platforms: AWS SageMaker, Azure ML, GCP Vertex AI, distributed training,

and cloud-native AI architectures

- MLOps& Deployment: Kubernetes, Docker, model serving (TorchServe, TensorFlow

Serving), CI/CD for ML, and production monitoring

93

- Research & Innovation: Literature review, experimental design, research methodology,

and emerging AI technology evaluation

- Specialized AI: NLP (BERT, GPT, LLM fine-tuning), Computer Vision (YOLO, ResNet),

Time Series (LSTM, Prophet), and Generative AI

📌 AI ML Lead (Noida)
🏢 Tata Consultancy Services
📍 Noida

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