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Senior ML Ops Engineer

Tata Consultancy Services

RemoteFull timeMid levelPosted today
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About the role

  • Design, develop, and maintain scalable backend systems and APIs using Python and cloud-native technologies.
  • Build, deploy, and optimize machine learning models, training pipelines, and ML-powered applications in production environments.
  • Develop, maintain, and improve CI/CD pipelines across multiple platforms using tools such as Jenkins, GitHub Actions, and related automation frameworks.
  • Containerize applications and manage deployments using Docker and Kubernetes to ensure high availability and scalability
  • Implement Infrastructure as Code (IaC) practices using tools such as Terraform, CloudFormation, or equivalent solutions.
  • Collaborate with data scientists, software engineers, and product teams to integrate ML models into production systems.
  • Design and manage cloud infrastructure on AWS and other cloud platforms to support ML workloads and backend services. [
  • Monitor application performance, availability, and reliability using tools such as Prometheus, Grafana, and ELK Stack.
  • Implement security best practices, access controls, and compliance standards across applications and infrastructure.
  • Troubleshoot complex production issues, perform root cause analysis, and drive continuous improvements.
  • Conduct system testing for performance, scalability, security, and availability requirements.
  • Automate operational processes, deployment workflows, and infrastructure management using Python, Shell, and Groovy scripting.
  • Work closely with development teams to establish and enhance deployment strategies and release management processes.
  • Maintain documentation for architecture, deployment procedures, monitoring, and operational practices.
  • Participate in code reviews, architectural discussions, and technical decision-making.
  • Mentor junior engineers and contribute to engineering excellence and best practices.
  • Independently drive projects and collaborate effectively with cross-functional teams to deliver business objective.

Preferred candidate profile

  • 8+ years of experience in Backend Engineering, MLOps, DevOps, or Cloud Engineering.
  • Strong expertise in Python, REST APIs, AWS, Docker, and Kubernetes.
  • Hands-on experience with ML frameworks such as PyTorch, TensorFlow, and Scikit-learn.
  • Proven experience building ML training, deployment, and monitoring pipelines.
  • Strong knowledge of CI/CD automation, Infrastructure as Code, and cloud-native architectures.
  • Excellent problem-solving, communication, stakeholder management, and teamwork skill

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