🔔 FCM Loaded

Devops MLops Engineer

Impetus

2 - 5 years

Gurugram

Posted: 17/02/2026

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Job Description

Job Description

  • 5+ years of good experience in MLOps.
  • A talented MLOps Engineer help operationalize machine learning models at scale.
  • The ideal candidate will have a strong background in machine learning, software engineering, and DevOps practices, with expertise in deploying, monitoring, and maintaining ML models in production environments.
  • Strong experience in MLOps, DevOps, or related fields.
  • Proficiency in Python and experience with ML frameworks such as TensorFlow, PyTorch, or Scikit-learn.Hands-on experience with cloud platforms (e.g., AWS, GCP, or Azure) and their ML services.
  • Knowledge of containerization and orchestration tools (e.g., Docker, Kubernetes).
  • Experience with CI/CD tools (e.g.GitHub Actions orJenkins).
  • Familiarity with monitoring tools for ML models (e.g., Dynatrace, Prometheus, Grafana, or MLFlow).
  • Strong understanding of version control for models and data (e.g., Git).
  • Knowledge in scripting using python/unix bash.


Roles & Responsibilities


  • Good in communication, coordination and proactive in nature.
  • Self-driven, customer centric and innovative.
  • Checking deployment pipelines for machine learning models.
  • Review Code changes and pull requests from the data science team.
  • Triggers CI/CD pipelines after code approvals.
  • Monitors pipelines and ensures all tests pass and model artifacts are generated/stored correctly.
  • Deploys updated models to prod after pipeline completion.
  • Works closely with the software engineering and DevOps team to ensure smooth integration.
  • Containerize models using Docker and deploy on cloud platforms (like AWS/GCP/Azure).
  • Set up monitoring tools to track various metrics like response time, error rates, and resource utilization.
  • Establish alerts and notifications to quickly detect anomalies or deviations from expected behavior.
  • Analyze monitoring data, log, files, and system metrics.
  • Collaborate with the data science team to develop updated pipelines to cover any faults.
  • Documenting and troubleshoots, changes, and optimization.

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