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ML Ops Engineer
Infosys
2.9
185 reviews
Job Type / Job Level
Full-time / Others/Any
Company Location
India
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Required Skills:
Strong proficiency in Python and ML frameworks (TensorFlow, PyTorch, Scikit-learn).
Experience with containerization (Docker) and orchestration (Kubernetes).
Familiarity with cloud platforms (AWS, Azure, GCP) and ML services.
Expertise in CI/CD tools (GitHub Actions, Jenkins, Argo).
Knowledge of feature stores, model registries, and ML observability tools.
Understanding of data versioning and experiment tracking (MLflow, DVC). Key Responsibilities:
Develop and maintain CI/CD pipelines for ML models and data workflows.
Automate model training, testing, deployment, and rollback processes.
Implement monitoring and alerting for model performance and data drift.
Optimize infrastructure for cost, scalability, and reliability (cloud or hybrid environments).
Collaborate with data scientists and software engineers to integrate ML models into production.
Ensure compliance with security, governance, and reproducibility standards. Experience:
5–8 years of experience in software engineering or data engineering, with at least 3+ years in MLOps. Preferred Qualifications:
Experience with large-scale ML systems and distributed training.
Familiarity with GenAI model deployment and optimization.
Strong problem-solving and debugging skills in production environments
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