Expert, Data Scientist
What will you do?
* Collaborate with the AI Product Owner to understand the business requirements and define appropriate modelling approaches, experimentation plans, and success metrics.
* Coordinate with business teams to monitor model outcomes, gather feedback, and refine/improve machine learning models based on performance insights.
* Lead data discovery, feature engineering, experimentation, offline/online evaluation, and productionization with CI/CD for ML; own model documentation, reproducibility, and traceability.
* Apply supervised/unsupervised/deep learning, NLP, and LLM techniques (including RAG pipelines, prompt engineering, vector search, and safety guardrails) where they create clear value.
* Design and execute rigorous evaluation strategies for ML and GenAI models, including offline metrics, human-in-the-loop reviews for GenAI outputs, regression checks, and failure mode analysis.
* Implement governance frameworks for AI models - applying bias/fairness checks, safety filters, responsible AI controls, and executing evaluation protocols defined by Business.
* Collaborate with data/ML engineers to industrialize models via APIs/batch jobs, feature stores, scalable serving, and monitoring for drift, performance, cost, and latency.
* Lead data mining, collection, and quality initiatives across structured, semi-structured, and unstructured data to ensure integrity, lineage, and compliance.
* Maintain rigorous experiment tracking using tools, ensuring reproducibility and clear lineage across model iterations and experiments.
* Adhere to stringent quality assurance and documentation standards using version control and code repositories (e.g., Git, GitHub, Markdown)
* Mentor and lead data scientists, conduct design/code reviews, and cultivate best practices in experimentation, evaluation, and documentation.
* Track emerging tools/techniques in ML/GenAI and drive reusable frameworks, templates, and SDK/API-based accelerators to industrialize solutions across the organization.
What skills and capabilities will make you successful?
*
+ Technical Experience:
+ 5-8 years of hands-on experience across classical ML (tree-based methods, GLMs), deep learning (PyTorch/TensorFlow), and NLP/LLMs (tokenization, embeddings, fine-tuning, instruction-tuning, RAG).
Hands-on with evaluation and safety/guardrail patterns for production GenAI.
+ Familiarity with ML lifecycle platforms (such as SageMaker, Azure ML, or Databricks) to run experiments, track models, and provide well-structured model artifacts to ML Engineers for deployment
+ Comfortable with AWS services for data/ML (e.g., S3, Glue, EMR/Spark, Lambda, SageMaker; Databricks), and integrating with enterprise data lakes/warehouses.
+ Proficient in Python and ML/DS libraries (Pandas, scikit-learn, PyTorch/TensorFlow, XGBoost/LightGBM); strong software practices (testing, linting, packag...
- Rate: Not Specified
- Location: Bangalore, IN-KA
- Type: Permanent
- Industry: Finance
- Recruiter: Schneider Electric
- Contact: Not Specified
- Email: to view click here
- Reference: 95785-en-us
- Posted: 2026-03-19 07:36:38 -
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