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MLE/MLOps, OOPs Python, Databricks, Azure

MLE/MLOps, OOPs Python, Databricks, Azure

Infosys Limited
3-5 Years
Not Disclosed

This job is no longer accepting applications

Job Description

Key Responsibilities:

  • Key Responsibilities
  • Machine Learning Engineering
  • Develop train evaluate and deploy machine learning models at scale
  • Implement end to end ML pipelines from data ingestion to model serving
  • Work on model optimization validation and performance monitoring
  • Apply best practices for feature engineering and model lifecycle management
  • MLOps Deployment
  • Build and maintain MLOps pipelines for CI CD CT Continuous Training
  • Automate model deployment versioning and monitoring
  • Implement experiment tracking and model registry MLflow preferred
  • Ensure model reproducibility scalability and governance
  • Python OOPs Development
  • Develop modular reusable and scalable code using object oriented Python
  • Build robust backend services and ML utilities
  • Write clean testable and well documented code
  • Databricks
  • Develop and optimize workflows on Azure Databricks
  • Work with PySpark for data processing and feature engineering
  • Manage notebooks jobs clusters and Delta Lake pipelines
  • Optimize Spark jobs for performance and cost
  • Azure Cloud
  • Work with Azure services like Azure ML Data Factory Blob Storage ADLS Key Vault
  • Deploy models and pipelines using Azure DevOps CI CD pipelines
  • Implement secure scalable and cost efficient cloud architectures
  • Data Engineering Integration
  • Build and maintain data pipelines for ML workflows
  • Integrate models with APIs and downstream applications
  • Work with large datasets structured unstructured

Technical Requirements:

  • Required Skills Qualifications
  • Core Skills
  • 3 5 years of experience in Machine Learning MLOps
  • Strong proficiency in Python with OOP concepts mandatory
  • Hands on experience with Databricks PySpark
  • Solid experience with Azure cloud ecosystem
  • Technical Skills
  • Experience with ML frameworks Scikit learn TensorFlow PyTorch
  • Hands on with MLflow experiment tracking model registry
  • Knowledge of CI CD tools Azure DevOps Jenkins GitHub Actions
  • Strong understanding of data structures algorithms and system design basics
  • Experience with REST APIs and microservices
  • Preferred Skills
  • Exposure to feature stores and model monitoring tools
  • Knowledge of Docker Kubernetes
  • Familiarity with Delta Lake data lakes and warehouse architectures
  • Experience with streaming Kafka Event Hub
  • Understanding of data governance and security best practices

Preferred Skills:

Technology->AI-Data science->Databricks Machine Learning,Technology->AI-Data science->PYTHON,Technology->Data Engineering->Databricks,Technology->Cloud Platform->Azure Networking Services->Azure NAT Gateway

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Key Skills

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