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We are seeking a highly skilled Senior DevOps / MLOps Engineer to join our team and drive the deployment and integration of machine learning projects across the enterprise. In this role, you will be responsible for building, maintaining, and optimizing the infrastructure and pipelines that support end-to-end machine learning workflows—from development to production. You’ll collaborate closely with data scientists, ML engineers, and business stakeholders to turn ideas into scalable, reliable, and secure solutions. This role is ideal for someone who thrives in fast-paced environments, enjoys problem-solving, and brings both technical depth and practical business sense to their work.
Job Responsibility:
Design, implement, and maintain robust CI/CD pipelines for ML and software projects
Support the full SDLC (Software Development Life Cycle), ensuring smooth integration, testing, deployment, and monitoring
Build and manage ML model deployment pipelines, including containerization, versioning, rollback, and orchestration
Automate testing, quality assurance, and performance checks for Python-based machine learning code
Develop and maintain infrastructure-as-code solutions for repeatable and consistent environments
Implement observability best practices, including monitoring, alerting, logging, and metrics
Handle secrets management and enforce security practices in all DevOps processes
Collaborate with cross-functional teams to translate business requirements into operational systems
Identify and troubleshoot infrastructure and deployment issues, providing scalable solutions
Document architectures, processes, and configurations clearly and concisely
Requirements:
Strong experience with general DevOps tooling and practices
Proficient in Python with experience in testing frameworks (e.g., pytest)
Deep knowledge of CI/CD tools (e.g., GitHub Actions, Jenkins, GitLab CI, etc.)
Familiarity with SDLC processes, change control, and release management
Hands-on experience with ML pipeline orchestration tools (e.g., MLflow, Airflow, Kubeflow)
Experience with Lightspeed for scalable ML workflows
Proficient with Helm for Kubernetes application packaging and deployment
Hands-on experience with monitoring and logging tools (e.g., Prometheus, Grafana, ELK)
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