DevOps+MLOps+PythonML Developer

Infosys

Bengaluru

On-site

INR 1,500,000 - 2,300,000

Full time

8 days ago
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Job summary

Infosys in Bengaluru is seeking an experienced DevOps/MLOps professional to design, implement, and operate end-to-end ML pipelines and production-grade deployment solutions. You will collaborate with data scientists to productionize models, automate infrastructure, and enforce robust CI/CD practices across environments.

The role emphasizes secure, scalable, and observable ML deployments, with hands-on work on Docker/Kubernetes, Terraform, and MLflow.

Qualifications

  • 3–5 years of experience in DevOps and MLOps-focused delivery for production systems.
  • Hands-on experience with Python-based ML workflows and operationalizing ML models into services or batch pipelines.
  • Strong understanding of CI/CD concepts, release management, and environment promotion strategies.
  • Experience implementing monitoring and operational practices for reliability and troubleshooting in production.
  • Experience building and operating end-to-end MLOps pipelines including model packaging, deployment automation, and lifecycle governance.

Responsibilities

  • Design, implement, and maintain CI/CD pipelines for applications and ML services across environments.
  • Automate infrastructure provisioning and configuration to improve reliability, repeatability, and deployment speed.
  • Establish monitoring, logging, and alerting practices to improve system observability and incident response.
  • Ensure secure access controls, secrets management, and environment hygiene across development and production.
  • Build and maintain ML pipelines for training, validation, packaging, and deployment of models using Python-based workflows.

Skills

CI/CD
MLOps
Python for ML
ML pipelines
Model deployment

Education

Bachelor’s degree in Engineering/Technology/Computer Science

Tools

Docker
Kubernetes
Terraform
MLflow
Apache Airflow

Job description

  • Primary skills: DevOps/MLOps/PythonML -Domain->Turbomachinery->Compressor->Rotor,Technology->Data Science->Machine Learning,Technology->DevOps->Continuous delivery - Continuous deployment and release,Technology->Machine Learning->Python
  • Primary skills: DevOps/MLOps/PythonML -Domain->Turbomachinery->Compressor->Rotor,Technology->Data Science->Machine Learning,Technology->DevOps->Continuous delivery - Continuous deployment and release,Technology->Machine Learning->Python
Key Responsibilities: DevOps & Platform Enablement
  • Design, implement, and maintain CI/CD pipelines for applications and ML services across environments.
  • Automate infrastructure provisioning and configuration to improve reliability, repeatability, and deployment speed.
  • Establish monitoring, logging, and alerting practices to improve system observability and incident response.
  • Ensure secure access controls, secrets management, and environment hygiene across development and production. MLOps & ML Delivery
  • Build and maintain ML pipelines for training, validation, packaging, and deployment of models using Python-based workflows.
  • Enable model versioning, reproducibility, and controlled rollouts (e.g., canary/blue-green) for ML services.
  • Partner with data science teams to productionize models and define operational SLAs for ML endpoints and batch jobs.
  • Implement automated quality checks for data/model artifacts to reduce regressions and improve release confidence. LLM Enablement
  • Support deployment patterns for LLM-based services, including scalable inference, prompt/version management, and runtime monitoring.
  • Collaborate on integrating LLM capabilities into existing platforms with a focus on reliability, latency, and cost awareness. Minimum Qualifications:
  • Bachelor’s degree or equivalent in Engineering/Technology/Computer Science (BTech/BE or equivalent); Master’s (MTech/MCA/MSc) is acceptable as listed.
  • 3–5 years of experience in DevOps and MLOps-focused delivery for production systems.
  • Hands‑on experience with Python-based ML workflows and operationalizing ML models into services or batch pipelines.
  • Strong understanding of CI/CD concepts, release management, and environment promotion strategies.
  • Experience implementing monitoring and operational practices for reliability and troubleshooting in production.
  • Experience building and operating end‑to‑end MLOps pipelines including model packaging, deployment automation, and lifecycle governance.
  • Practical exposure to LLM solution delivery, including inference deployment, prompt iteration workflows, and evaluation/monitoring approaches.
  • Familiarity with containerization and orchestration for ML workloads, and optimizing deployments for performance and scalability.
  • Experience with infrastructure automation and configuration management to support repeatable ML environments.
  • Proven ability to collaborate across data science and engineering teams, translating experimentation needs into production‑grade systems.
  • Good to have skills: Kubernetes, Docker, Terraform, MLflow, Apache Airflow
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