AI Engineer + ML ops

Zorba AI

Dadri

On-site

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

Full time

8 days ago
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Job summary

Zorba AI in Dadri, India seeks an experienced MLOps Engineer to bridge data science and deployment. You will build pipelines, manage CI/CD, and deploy scalable model-serving APIs with AKS and FastAPI.

The role emphasizes production ML systems, observability, and DevSecOps practices in a fast-moving AI environment.

Qualifications

  • 4+ years in ML/AI engineering or DevOps with hands-on production MLOps pipelines.
  • Experience with CI/CD tooling and multi-stage gates.
  • Exposure to model serving, monitoring, and optimization.
  • Cloud knowledge across Azure/AWS/GCP is a plus.

Responsibilities

  • Build end-to-end pipelines — data ingestion, training, evaluation, packaging, versioning, deployment.
  • Develop and maintain Jenkins CI/CD for Dev → QA → Production with gates.
  • Deploy model-serving APIs on AKS using FastAPI and vLLM; apply optimizations.
  • Set up observability — Prometheus, Grafana, Azure Monitor, drift detection.
  • Apply DevSecOps — Key Vault, Managed Identity, SonarQube, Trivy/Snyk.
  • Develop REST/WebSocket services using FastAPI.

Skills

MLOps pipelines
Jenkins
Azure DevOps
GitOps
FastAPI
Python
Docker
AKS
Databricks ML
ONNX/TensorRT

Education

B.E./B.Tech in CS/Software/Data Science

Tools

Databricks
MLflow
PySpark
Docker
Kubernetes (AKS)
Prometheus
Grafana
Terraform
Helm
FastAPI

Job description

MLOps Engineer / Developer

Snapshot

Experience: 4–6 years in ML/AI engineering or DevOps

Reports To: MLOps Technical Lead / Manager, AIML

Education: B.E./B.Tech in CS, Software Engineering, or Data Science

About The Role

Build and operate the MLOps pipelines that take AI/ML and GenAI models from experimentation to production — packaging, CI/CD delivery, model serving, and monitoring. A hands-on engineering role bridging data science and enterprise deployment.

Key Responsibilities
  • Build end-to-end pipelines — data ingestion, training, evaluation, packaging, versioning, and deployment.
  • Develop and maintain Jenkins CI/CD for Dev → QA → Production promotion with multi-stage gates.
  • Deploy model-serving APIs on AKS using FastAPI and vLLM; apply ONNX/TensorRT optimizations.
  • Set up observability — drift detection (Evidently AI), Prometheus/Grafana, Azure Monitor.
  • Apply DevSecOps practices — Key Vault, Managed Identity, SonarQube, Trivy/Snyk.
  • Application Development – REST, WebSocket Frameworks using FastAPI
Must-Have Skills
  • 4+ years in ML/AI engineering or DevOps with hands-on production MLOps pipeline experience.
  • CI/CD tooling: CI tooling (UV, Ruff, Pyrefly), Jenkins (strong), Azure DevOps, GitOps concepts; Git and pre-commit workflows.
  • Databricks ML pipelines (Delta Lake, Workflows, MLflow), Asset Bundles and PySpark for data processing.
  • Model serving: FastAPI, Docker, AKS; exposure to vLLM and ONNX/TensorRT optimization.
  • Python (strong — FastAPI, Pydantic, async), Bash, YAML/SQL scripting.
  • Cloud knowledge – Azure/AWS/GCP Storage, AI related services.
  • Databases and storage: PostgreSQL, Redis, ADLS Gen2.
  • Understanding of containerization, Helm, and infrastructure automation.
Nice to Have
  • Airflow, DVC, and experiment tracking (W&B / Comet ML).
  • Terraform, KEDA, Azure APIM, and AAD RBAC configuration.
  • LLM fine-tuning pipelines; Ray Serve or BentoML exposure.
  • Groovy (Jenkinsfile).
  • Manufacturing or semiconductor domain experience.

Skills: azure,ml,data science,fastapi,pipelines

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