MLOps Engineer || Chennai || Early Joiners

HCLTech

Chennai

On-site

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

Full time

14 days+

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Job summary

A leading technology company is seeking an experienced MLOps Engineer in Chennai to deploy, scale, and manage machine learning models in production. Responsibilities include transforming prototypes to production-grade models and developing REST APIs. Candidates should have 6-10 years of experience, a Bachelor’s degree in a relevant field, and strong skills in Python and cloud platforms like AWS and Azure.

Qualifications

  • 6 to 10 years of experience in MLOps and deployment.
  • Strong problem-solving and analytical skills.
  • Ability to work in a team-oriented, collaborative environment.

Responsibilities

  • Transform prototypes into production-grade models.
  • Assist in building and maintaining ML pipelines across cloud platforms.
  • Develop REST APIs for model serving.
  • Collaborate with data scientists to monitor and manage models.

Skills

Python
SQL
Pyspark
Docker
Kubernetes
AWS
Azure
GCP
Machine Learning
CI/CD

Education

Bachelor's degree in computer science, analytics, mathematics, statistics

Tools

FastAPI
Flask
GitHub Actions
Terraform

Job description

MLOps Engineer || Chennai || Early Joiners
MLOps Engineer || Chennai || Early Joiners

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HCLTech is hiring ML Ops Engineer for Chennai location.

Job Overview:

We are looking for an experienced MLOps Engineer to help deploy, scale, and manage machine learning models in production environments. You will work closely with data scientists and engineering teams to automate the machine learning lifecycle, optimize model performance, and ensure smooth integration with data pipelines.

Experience Required: 6 to 10 yrs

Notice Period: Immediate/ 30 days

Key Responsibilities:

Transform prototypes into production-grade models

  • Assist in building and maintaining machine learning pipelines and infrastructure across cloud platforms such as AWS, Azure, and GCP.
  • Develop REST APIs or FastAPI services for model serving, enabling real-time predictions and integration with other applications.
  • Collaborate with data scientists to design and develop drift detection and accuracy measurements for live models deployed.
  • Collaborate with data governance and technical teams to ensure compliance with engineering standards.

Maintain models in production

  • Collaborate with data scientists and engineers to deploy, monitor, update, and manage models in production.
  • Manage the full CI/CD cycle for live models, including testing and deployment.
  • Develop logging, alerting, and mitigation strategies for handling model errors and optimize performance.
  • Troubleshoot and resolve issues related to ML model deployment and performance.
  • Support both batch and real-time integrations for model inference, ensuring models are accessible through APIs or scheduled batch jobs, depending on use case.

Contribute to AI platform and engineering practices

  • Contribute to the development and maintenance of the AI infrastructure, ensuring the models are scalable, secure, and optimized for performance.
  • Collaborate with the team to establish best practices for model deployment, version control, monitoring, and continuous integration/continuous deployment (CI/CD).
  • Drive the adoption of modern AI/ML engineering practices and help enhance the team’s MLOps capabilities.
  • Develop and maintain Flask or FastAPI-based microservices for serving models and managing model APIs.

Minimum Required Skills:

  • Bachelor's degree in computer science, analytics, mathematics, statistics.
  • Strong experience in Python, SQL, Pyspark.
  • Solid understanding and knowledge of containerization technologies (Docker, Podman, Kubernetes).
  • Proficient in CI/CD pipelines, model monitoring, and MLOps platforms (e.g., AWS SageMaker, Azure ML, MLFlow).
  • Proficiency in cloud platforms, specifically AWS, Azure and GCP.
  • Familiarity with ML frameworks such as TensorFlow, PyTorch, Scikit-learn.
  • Familiarity with batch processing integration for large-scale data pipelines.
  • Experience with serving models using FastAPI, Flask, or similar frameworks for real-time inference.
  • Certifications in AWS, Azure or ML technologies are a plus.
  • Experience with Databricks is highly valued.
  • Strong problem-solving and analytical skills.
  • Ability to work in a team-oriented, collaborative environment.

Tools and Technologies:

CI/CD & Pipelines: GitHub Actions, GitLab CI, Jenkins, ZenML, Kubeflow Pipelines, Metaflow

Infrastructure & Orchestration: Terraform, Ansible, Apache Airflow, Prefect

Cloud & Deployment: AWS, GCP, Azure, Serverless (Lambda, Cloud Functions)

Monitoring & Logging: Prometheus, Grafana, ELK Stack, WhyLabs, Evidently AI, Arize

Testing & Validation: Pytest, unittest, Pydantic, Great Expectations

Feature Store & Data Handling: Feast, Tecton, Hopsworks, Pandas, Spark, Dask

Message Brokers & Data Streams: Kafka, Redis Streams

Vector DB & LLM Integrations (optional): Pinecone, FAISS, Weaviate, LangChain, LlamaIndex, PromptLayer

Interested candidates, kindly share their resumes on paridhnya_dhawankar@hcltech.com with below details.

Overall Experience:

Current and Expected CTC:

Current and Preferred Location:

Notice Period:

Seniority level
  • Seniority level
    Mid-Senior level
Employment type
  • Employment type
    Full-time
Job function
  • Job function
    Engineering and Information Technology
  • Industries
    IT Services and IT Consulting, Software Development, and IT System Custom Software Development

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