At Zimmer Biomet, we believe in pushing the boundaries of innovation and driving our mission forward. As a global medical technology leader for nearly 100 years, a patient’s mobility is enhanced by a Zimmer Biomet product or technology every 8 seconds. As a Zimmer Biomet team member, you will share in our commitment to providing mobility and renewed life to people around the world. To support our talent team, we focus on development opportunities, robust employee resource groups (ERGs), a flexible working environment, location specific competitive total rewards, wellness incentives and a culture of recognition and performance awards. We are committed to creating an environment where every team member feels included, respected, empowered and recognised.
What You Can Expect
Job Summary
The MLOps Engineer is responsible for designing, building, and operating scalable, reliable, and secure machine learning platforms and pipelines. This role bridges data science, software engineering, and cloud infrastructure, enabling models to move from experimentation to production with high availability, governance, and performance.The role focuses on ML platform engineering, automation, reliability, and lifecycle management across training, deployment, monitoring, and retraining of machine learning models.
Work Location: Bangalore
Work Mode: Hybrid (3 Days in office)
How Youll Create Impact
Key Responsibilities
ML Platform & Pipeline Engineering
Design, build, and maintain end-to-end ML pipelines for training, validation, deployment, and monitoring
Productionize machine learning models developed by Data Scientists
Implement standardized workflows for feature engineering, model versioning, and model promotion
Deployment, Monitoring & Reliability
Deploy models using containerized and cloud-native architectures
Implement monitoring for model performance, data drift, and system health
Lead root-cause analysis for model or pipeline failures and implement long-term fixes
Automation & DevOps for ML
Build CI/CD pipelines for ML workflows (training, testing, deployment)
Automate infrastructure provisioning and environment management
Enforce repeatability, reproducibility, and traceability of ML experiments
Governance, Security & Compliance
Implement ML governance controls including lineage, auditability, and access control
Partner with Security, GRC, and Data Governance teams to ensure compliance
Support responsible AI practices and enterprise standards
Collaboration & Enablement
Partner closely with Data Scientists, Data Engineers, and Platform Engineers
Provide guidance and best practices for scalable model development
Contribute to documentation, standards, and internal enablement
What Makes You Stand Out
Technologies & Tools
Machine Learning & MLOps
Python (primary), with ML libraries (scikit-learn, TensorFlow, PyTorch – support level)
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