MLOps Engineer

Hexacorp Technical Services

Bengaluru

On-site

INR 1,400,000 - 2,300,000

Full time

8 days ago
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Job summary

Hexacorp Technical Services seeks an experienced ML Ops Engineer to deploy and manage ML pipelines in Bengaluru. You will build and maintain CI/CD for models, containerize services with Docker, orchestrate with Kubernetes, and ensure reliable data feeds and model registry management.

Ideal candidates have 4–7 years in MLOps or ML engineering, strong Python/SQL scripting, and familiarity with Azure ML services.

Qualifications

  • 4–7 years of hands‑on MLOps, ML engineering or DevOps with ML workflows.
  • Experience applying CI/CD tooling to model deployment.
  • Proficiency in Python and SQL; scripting and automation.

Responsibilities

  • Model deployment and CI/CD pipelines for ML models across environments.
  • Monitoring, observability, and alerting for production model performance.
  • Manage model registry, versioning, and artifact lineage.
  • Collaborate with Data Scientists and ML Engineers to translate requirements.

Skills

MLOps / ML engineering
CI/CD for ML
Python & SQL scripting
Data science collaboration

Tools

Docker
Kubernetes
Azure ML services

Job description

Role & responsibilities

1. Model Deployment & CI/CD

  • Build and maintain CI/CD pipelines for ML model packaging, testing, and deployment across dev, test, and production environments.
  • Support containerization and orchestration of model services using standard platform tooling.
  • Implement controlled release patterns (staged rollouts, rollback procedures) for model updates.
  • Contribute to reusable deployment templates and pipeline patterns that reduce rework across model teams.

2. Monitoring & Observability

  • Implement monitoring for model performance, data drift, and pipeline health in production.
  • Set up alerting and dashboards to flag degraded model accuracy, latency issues, or job failures.
  • Support root-cause investigation of production incidents and contribute to post-incident fixes. Job Title: ML Ops Engineer Hiring
  • Maintain logging and traceability so model behavior can be audited and reproduced.

3. Pipeline & Infrastructure Support

  • Operate and maintain training, retraining, and batch-scoring pipelines on schedule.
  • Manage model registry entries, versioning, and artifact lineage for deployed models.
  • Support environment hygiene, including dependency management and base image updates.
  • Partner with platform teams to ensure efficient use of compute resources for training and inference.

4. Collaboration & Enablement

  • Work with Data Scientists and ML Engineers to translate model requirements into deployable services.
  • Partner with Data Engineering to ensure consistent, reliable data feeds into ML pipelines.
  • Document deployment patterns, runbooks, and operational standards to support team self-service.
  • Communicate clearly on deployment status, risks, and dependencies to stakeholders.
Preferred candidate profile
  • 4 to 7 years of hands‑on experience in MLOps, ML engineering, or DevOps roles with exposure to machine learning workflows.
  • Working knowledge of CI/CD tooling and practices applied to model deployment.
  • Experience with containerization (Docker) and orchestration concepts (Kubernetes or equivalent).
  • Proficiency in Python and SQL, with the ability to script and automate operational tasks.
  • Familiarity with cloud platforms (Azure preferred) and their ML services.
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