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EPAM Systems · Coimbatore, Tamil Nadu, India

Lead Systems Engineer - Data DevOps/MLOps

seniorfull timePosted 10 days ago
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Stack mentioned

devopsmlopsmachine-learningci/cdetldata-engineeringazureawsgcpterraformcloudformationansibledockerkubernetesapache-sparkdatabrickspythonpandastensorflowpytorch

We are seeking a skilled and passionate Lead Systems Engineer with Data DevOps/MLOps expertise to drive innovation and efficiency across our data and machine learning operations.

Responsibilities

- Design, deploy, and manage CI/CD pipelines for seamless data integration and ML model deployment

- Establish robust infrastructure for processing, training, and serving machine learning models using cloud-based solutions

- Automate critical workflows such as data validation, transformation, and orchestration for streamlined operations

- Collaborate with cross-functional teams, including data scientists and engineers, to integrate ML solutions into production environments

- Improve model serving, performance monitoring, and reliability in production ecosystems

- Ensure data versioning, lineage tracking, and reproducibility across ML experiments and workflows

- Identify and implement opportunities to improve scalability, efficiency, and resilience of the infrastructure

- Enforce rigorous security measures to safeguard data and ensure compliance with relevant regulations

- Debug and resolve technical issues in data pipelines and ML deployment workflows

Requirements

- Bachelor’s or Master’s degree in Computer Science, Data Engineering, or a related field

- 8+ years of experience in Data DevOps, MLOps, or related disciplines

- Expertise in cloud platforms such as Azure, AWS, or GCP

- Skills in Infrastructure as Code tools like Terraform, CloudFormation, or Ansible

- Proficiency in containerization and orchestration technologies such as Docker and Kubernetes

- Hands-on experience with data processing frameworks including Apache Spark and Databricks

- Proficiency in Python with familiarity with libraries including Pandas, TensorFlow, and PyTorch

- Knowledge of CI/CD tools such as Jenkins, GitLab CI/CD, and GitHub Actions

- Experience with version control systems and MLOps platforms including Git, MLflow, and Kubeflow

- Understanding of monitoring and alerting tools like Prometheus and Grafana

- Strong problem-solving and independent decision-making capabilities

- Effective communication and technical documentation skills

Nice to have

- Background in DataOps methodologies and tools such as Airflow or dbt

- Knowledge of data governance platforms like Collibra

- Familiarity with Big Data technologies such as Hadoop or Hive

- Showcase of certifications in cloud platforms or data engineering tools

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