Machine Learning (ML) Engineer (CE60SF RM 3571)

4 years

0 Lacs

Posted:2 days ago| Platform: Linkedin logo

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Work Mode

On-site

Job Type

Full Time

Job Description

Position: Machine Learning (ML) Engineer (CE60SF RM 3571)

Shift timing : General Shift / 5 days week work from officeRelevant Experience required : 4+ yearsEducation Required : Bachelor’s / Masters / PhD : B.E Computers, MCA is preferable

Must Have Skills

  • Machine Learning
  • Python
  • DataBricks
  • Cloud Platform with strong MLOps exposure [Azure preferable]
  • SQL, NoSQL, and data modeling
  • Drift Detection & Monitoring
  • Data Governance

Good To Have

  • LLM solutions (RAG, Agentic AI, MCP, prompt engineering).
  • Power BI dashboards

Role SummaryLead the design, development, and deployment of ML solutions at scale. Drive architecture, mentor the team, and integrate advanced AI (including LLMs) into enterprise workflows.

Note: Deep Learning is GREAT to have but Machine Learning is MANDATORY

Must-Have (Mandatory)

  • Machine Learning: Deep understanding of supervised, unsupervised, and reinforcement learning, model evaluation, and feature engineering.
  • Deep Learning: Proficiency with TensorFlow, PyTorch, Keras; hands-on with CNNs, RNNs.
  • Programming: Expert in Python (NumPy, Pandas, scikit-learn, etc.); R exposure acceptable.
  • Big Data Technologies: Practical experience with Spark (Databricks preferred); familiarity with Hadoop/Kafka.
  • Cloud Platforms: Azure or AWS or GCP (ML services, data storage, compute), with strong MLOps exposure.
  • Data Warehousing & Databases: Strong SQL, NoSQL, and data modeling.
  • Drift Detection & Monitoring: Hands-on experience with model drift detection, monitoring, and automated alerts.
  • Data Governance: Practical experience implementing governance frameworks, lineage tracking, metadata management, and compliance.
  • Architect scalable MLOps pipelines using Azure ML, MLflow, Databricks Asset Bundles (DAB), and CI/CD/CT

Good-to-Have

  • Design & deploy LLM solutions (RAG, Agentic AI, MCP, prompt engineering).
  • Build Power BI dashboards for monitoring models and reporting business KPIs.
  • Strong grounding in statistics, hypothesis testing, and data interpretation.
  • Apply software engineering principles for reusable, testable, and maintainable ML code.
  • Stay up to date with Generative AI, Agentic AI, and LLMs and assess practical adoption.
  • Mentor juniors, review code, and conduct technical knowledge-sharing sessions.
  • Certification: Microsoft Certified: Azure Data Scientist Associate (nice to have).
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