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Databricks Data Engineer (Spark AND Unity)

Unison GroupBengaluru, Karnataka🇮🇳IndiaPosted 2 Oct 2026

Why This Role Stands Out

This role offers significant growth potential as you'll leverage cutting-edge Databricks technologies like Spark and Unity Catalog to build robust data pipelines for impactful AI projects. You'll thrive here if you have 3-4 years of data engineering experience with a passion for optimizing ETL processes and collaborating to drive data-driven insights. Apply today to join a forward-thinking team and advance your skills in a dynamic environment.

Quick Overview

Seniority
Mid Senior
Work mode
On Site
Location
Bengaluru, Karnataka, India
Posted
3 days ago
SQLETLEncryptionAzureDatabricksPythonUnity

Job Description

Interview - Face to face

Position Overview:
Build and maintain scalable data pipelines using Azure Databricks to support DATA & AI ACDP projects. Apply 3-4 years of experience to deliver reliable ETL processes and collaborate on data-driven insights.

Key Responsibilities:

  • Design, build, and optimize data pipelines in Azure Databricks for ingestion, ETL/ELT, and transformations, implementing Medallion Architecture (Bronze, Silver, Gold) with Delta Lake for data quality and versioning.
  • Utilize Databricks Spark (PySpark, SQL), Delta Live Tables, and Unity Catalog for pipeline development, governance, and basic streaming.
  • Integrate data from ADLS Gen2, Azure SQL Database, and SQL Pools; support orchestration via Databricks workflows.
  • Implement CI/CD in Azure DevOps for Databricks deployments, including Bicep templates and ADF integration.
  • Apply data quality measures (expectations, constraints), security (RBAC, encryption), and monitoring for performance/cost efficiency using auto-scaling and Photon.
  • Work with analysts and stakeholders to refine requirements into functional workflows; handle data cleansing, modeling, and Python/SQL scripting for structured/unstructured data.
  • Troubleshoot pipelines and contribute to documentation/best practices.

Required Qualifications:

  • 3-4 years in data engineering, focused on Azure Databricks pipelines and ETL
  • Proficiency in PySpark, SQL, Python; experience with cloud storage and basic orchestration
  • Familiarity with Azure fundamentals and collaborative tools

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