Lead/Sr AI Engineer with Azure Data Bricks || Immediate Joiner

Posted 2 Days Ago
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Hiring Remotely in Bengaluru, Bengaluru Urban, Karnataka, IND
In-Office or Remote
Senior level
Cloud • Database
The Role
Build and deploy production-ready AI applications and data pipelines on Azure Databricks. Responsibilities include PySpark and SQL ETL/ELT, CI/CD, Azure integrations, ML and generative AI deployment, RAG and vector search, LLM fine-tuning, monitoring, optimization, governance, and responsible AI. The role also involves Databricks Apps, Unity Catalog, prompt engineering, FastAPI and React applications, testing, guardrails, and collaboration with data science and platform teams.
Summary Generated by Built In

Primary Responsibilities: 

This role focuses on building production-ready AI applications and deploying them on Azure Databricks and Azure cloud infrastructure. You will work end-to-end: from data ingestion and model integration to scalable deployment, monitoring, and ongoing optimization.

The expectation is to convert AI ideas into reliable, governed, and cost-efficient applications that run in production. You will design data and AI pipelines, integrate models (including ML and Generative AI), and deploy them using Databricks workflows and Azure-native services.

Success in this role requires strong hands-on experience with Azure Databricks, Python, SQL, and Azure services, along with a clear understanding of how AI systems fail in production—and how to prevent it. You will collaborate closely with data scientists, platform engineers, and business stakeholders to ensure AI applications are usable, scalable, and maintainable beyond the first release.


Key Responsibilities

  • Design and build end-to-end data and AI pipelines using Azure Databricks.
  • Develop robust ETL/ELT workflows using Python (PySpark) and SQL.
  • Implement CI/CD pipelines for Databricks deployments (jobs, notebooks, workflows).
  • Integrate Databricks with Azure services (Data Lake, Blob Storage, Key Vault, Azure OpenAI, Azure Functions, etc.).
  • Optimize jobs for performance, cost, and reliability.
  • Build reusable, modular code.
  • Collaborate with data scientists and platform teams to move models from experimentation to production.
  • Implement logging, monitoring, and error handling for production pipelines.
  • Develop and deploy ML and Generative AI models (LLMs, embeddings, RAG pipelines) for NLP, computer vision, and predictive analytics.
  • Fine-tune LLMs using LoRA/QLoRA and integrate with Azure OpenAI or Hugging Face models.
  • Implement vector search and retrieval pipelines using FAISS or Azure Cognitive Search.
  • Ensure responsible AI practices, including bias detection and model governance.

Good to Have (Strong Advantage)

  • Experience with ML and Generative AI workloads on Databricks.
  • RAG, embeddings, or inference pipelines.
  • Terraform / ARM / Bicep for infrastructure.
  • Databricks Asset Bundles.
  • Airflow or ADF orchestration.
  • Production monitoring and cost optimization experience.
  • Knowledge of LangChain or similar frameworks for AI application development.
  • Experience with Azure AI services (Azure Machine Learning, Azure Cognitive Services).

Databricks

  1. Design and build pipelines for ingesting data into Databricks from various sources like SAP, website scraping. Core technical skill will be PySpark and PySQL
  2. Write and do scenario-based testing, edge cases and discuss with the stake holders to finalize the necessary code changes and acceptance criteria.
  3. Understanding of the Databricks Unity Catalog permissions model and how to use OBO tokens and configure Service Principals for Databricks Agents,Genie Spaces, Machine Learning and Foundation Models.
  4. Knowledge of Databricks Apps. Ability to build and Deploy Databricks Apps using Visual Studio Code.
  5. Sending custom notifications from Databricks using APIs to custom Team Channel Webhooks

AI:

  1. Ability to use FastAPI /React front end and build minimal Single Page Applications(SPAs) using Chat UI interfaces and Claude Models/APIs
  2. Ability to use defined System Prompts, User Prompts etc..(i..e,) skills in prompt engineering.
  3. Basic Knowledge of Token Economics and ability use rule enforcement in prompts in addition to standard NLP language.
  4. Ability to reengineer code and see what it does and map it to the requirement specifications from users
  5. Ability to use Graphs to detect inter dependencies between rules and circular references.
  6. Ability to use both Claude Vision API in addition to standard text processing.
  7. Understand and develop Retrieval Augmented Generation specifically to Databricks like AI Search indexes, Hierarchical Chunking etc..
  8. Know how to implement basic guard rails related to AI safety
  9. Understand various caching mechanisms


Requirements
  • Azure Databricks (jobs, workflows, clusters, Unity Catalog preferred).
  • Python (PySpark-heavy, not just pandas).
  • SQL (complex joins, window functions, analytical queries).
  • Azure Cloud (ADLS Gen2, ADF, Key Vault, IAM concepts).
  • Pipeline orchestration & deployment (CI/CD, environment promotion).
  • Azure DevOps.
  • Strong understanding of ML lifecycle and MLOps best practices.
  • Experience with model deployment using MLflow or similar frameworks.

📩 Interested? Please share your resume at: [email protected] for a quick response

Skills Required

  • Hands-on experience with Azure Databricks, including jobs, workflows, clusters, and Unity Catalog
  • Strong Python experience, particularly PySpark rather than only pandas
  • Strong SQL skills, including complex joins, window functions, and analytical queries
  • Azure Cloud experience, including ADLS Gen2, Azure Data Factory, Key Vault, and IAM concepts
  • Experience with pipeline orchestration, CI/CD, deployment, and environment promotion
  • Experience with Azure DevOps
  • Strong understanding of the machine learning lifecycle and MLOps best practices
  • Experience deploying models using MLflow or similar frameworks
  • Experience building end-to-end data and AI pipelines
  • Experience developing and deploying machine learning and generative AI models, including LLMs, embeddings, and RAG pipelines
  • Experience with Databricks Unity Catalog permissions, OBO tokens, and service principals
  • Ability to build and deploy Databricks Apps using Visual Studio Code
  • Experience with RAG, embeddings, inference pipelines, or ML and generative AI workloads on Databricks
  • Experience with Terraform, ARM, Bicep, or Databricks Asset Bundles
  • Experience with Airflow or Azure Data Factory orchestration
  • Production monitoring and cost optimization experience
  • Knowledge of LangChain or similar AI application frameworks
  • Experience with Azure AI services, including Azure Machine Learning or Azure Cognitive Services
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The Company
HQ: Minneapolis, MN
19 Employees
Year Founded: 2018

What We Do

Enable Data specializes in advanced data, application and cloud solutions working on cutting-edge projects driving innovation and transformation for our customers. We empower our customers to leverage modern solutions to deliver increased value across their business ecosystem. We help clients by providing consulting, managed project and staff augmentation services working with clients across various industries including healthcare, financial, media, insurance, and manufacturing.

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