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Anonymous Logo

MLOps Engineer

India, Uttar Pradesh, Noida

2 weeks ago

Applicants: 0

Salary Not Disclosed

2 weeks left to apply

Job Description

EXPERIENCE REQUIRED : Minimum 8+ years Role & Responsibilities We are looking for a Senior MLOps Engineer with 8+ years of experience building and managing production-grade ML platforms and pipelines. The ideal candidate will have strong expertise across AWS, Airflow/MWAA, Apache Spark, Kubernetes (EKS), and automation of ML lifecycle workflows. You will work closely with data science, data engineering, and platform teams to operationalize and scale ML models in production. Key Responsibilities: Design and manage cloud-native ML platforms supporting training, inference, and model lifecycle automation. Build ML/ETL pipelines using Apache Airflow / AWS MWAA and distributed data workflows using Apache Spark (EMR/Glue). Containerize and deploy ML workloads using Docker, EKS, ECS/Fargate, and Lambda. Develop CI/CT/CD pipelines integrating model validation, automated training, testing, and deployment. Implement ML observability: model drift, data drift, performance monitoring, and alerting using CloudWatch, Grafana, Prometheus. Ensure data governance, versioning, metadata tracking, reproducibility, and secure data pipelines. Collaborate with data scientists to productionize notebooks, experiments, and model deployments. Ideal Candidate 8+ years in MLOps/DevOps with strong ML pipeline experience. Strong hands-on experience with AWS: Candidates with Product companies preferred; Exception for service company candidates with strong MLOps + AWS depth Compute/Orchestration: EKS, ECS, EC2, Lambda Data: EMR, Glue, S3, Redshift, RDS, Athena, Kinesis Workflow: MWAA/Airflow, Step Functions Monitoring: CloudWatch, OpenSearch, Grafana Strong Python skills and familiarity with ML frameworks (TensorFlow/PyTorch/Scikit-learn). Expertise with Docker, Kubernetes, Git, CI/CD tools (GitHub Actions/Jenkins). Strong Linux, scripting, and troubleshooting skills. Experience enabling reproducible ML environments using Jupyter Hub and containerized development workflows. Education: Master?s degree in Computer Science, Machine Learning, Data Engineering, or related field. Perks, Benefits and Work Culture Competitive Salary Package Generous Leave Policy Flexible Working Hours Performance-Based Bonuses Health Care Benefits

Additional Information

Company Name
Anonymous
Industry
N/A
Department
N/A
Role Category
MLOps Engineer
Job Role
Mid-Senior level
Education
No Restriction
Job Types
On-site
Employment Types
Full-Time
Gender
No Restriction
Notice Period
Immediate Joiner
Year of Experience
1 - Any Yrs
Job Posted On
2 weeks ago
Application Ends
2 weeks left to apply

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