MLOps Engineer

0 years

0 Lacs

Posted:1 day ago| Platform: Linkedin logo

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Work Mode

On-site

Job Type

Full Time

Job Description

Job Summary:

Join our customer's team as a hands-on MLOps Engineer, where you'll play a pivotal role in shaping, deploying, and automating end-to-end machine learning pipelines. Leveraging your expertise in AWS services and MLOps best practices, you will help operationalize cutting-edge ML solutions in a fast-paced, collaborative environment. This opportunity is ideal for passionate professionals who care deeply about clear communication and impactful ML systems.


Key Responsibilities:

  • Design, develop, and maintain robust ML pipelines for scalable deployment in production environments.
  • Implement and manage CI/CD workflows specific to machine learning code and artifacts.
  • Utilize AWS core services, with a strong focus on EKS, ECS, ECR, SageMaker (including processing, training, batch transform, hyperparameter tuning), Step Functions, EventBridge, SNS/SQS, and SageMaker Model Registry.
  • Automate and orchestrate machine learning workflows, ensuring reliability and reproducibility.
  • Collaborate with data scientists, engineers, and stakeholders to optimize ML models and deployment strategies.
  • Monitor, troubleshoot, and enhance ML systems for optimal performance, availability, and scalability.
  • Maintain clear, concise, and comprehensive documentation for pipelines, deployments, and operational processes.


Required Skills and Qualifications:

  • Proven hands-on experience as an MLOps Engineer or in a similar role supporting live ML applications.
  • Expertise in AWS cloud services, especially EKS, ECS, ECR, SageMaker, Step Functions, EventBridge, SNS/SQS, and Model Registry.
  • Deep understanding of core ML concepts and the nuances of deploying ML code in production-grade systems.
  • Strong experience with MLFlow for experiment tracking and model management.
  • Solid grasp of CI/CD concepts tailored to machine learning workflows.
  • Exceptional written and verbal communication skills, with a strong emphasis on collaboration and documentation.
  • Demonstrated ability to work on-site in Gurugram, Pune, or Bengaluru.


Preferred Qualifications:

  • Exposure to advanced ML workflow automation and monitoring tools.
  • Previous experience in high-performance, large-scale ML environments.
  • Relevant certifications in AWS or MLOps.

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