Data Engineer Sr (Databricks)

NTT DATA North America

Bengaluru Urban

On-site

INR 1,200,000 - 1,800,000

Full time

14 days+

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Job summary

NTT DATA North America is seeking a Senior Data Engineer in Bengaluru Urban, India. The ideal candidate will have over 8 years of experience working with Databricks to develop data pipelines and optimize workflows, particularly focusing on integrating legacy systems.

The role demands expertise in data governance, Delta Lake optimization, and utilizing cloud services effectively. A comprehensive understanding of data transformation processes and quality assurance is essential.

Qualifications

  • 8+ years of Databricks experience, especially with legacy data models.
  • Experience with optimizing data pipelines and cloud migrations.
  • Strong understanding of data governance and validation frameworks.

Responsibilities

  • Develop Databricks notebooks and optimize data workflows.
  • Integrate Databricks with cloud platforms.
  • Automate data validation for legacy and modern systems.

Skills

Databricks
AWS/S3
Azure ADLS
Snowflake
Change Data Capture
PySpark
Scala
Apache Spark

Education

Bachelor's degree in Computer Science or related field

Tools

Azure DevOps
Git

Job description

Roles & Responsibilities
  • Develop Databricks notebooks, jobs, and workflows to replicate and enhance DB2/Guidewire-based pipelines and transformations.
  • Implement Delta Lake tables and patterns (bronze/silver/gold, ACID, time travel, schema evolution) for migrated data.
  • Integrate Databricks with AWS/S3 or Azure ADLS, ADF/Synapse, Key Vault, and Snowflake as required.
  • Optimize Databricks clusters, jobs, and queries for performance and cost.
  • Implement incremental loads, CDC patterns, and batch schedules for large datasets.
  • Collaborate with Snowflake and dbt teams to ensure consistent data models and data contracts.
  • Participate in data validation and reconciliation between DB2 400 / Guiderwire and Databricks outputs.
  • Follow coding standards, version control, and CI/CD practices using Git/Azure DevOps.
  • Provide defect fixes and support during SIT/UAT and post go-live stabilization.
Experience

Legacy Demystification & Ingestion (DB2/400 & Guidewire)

8+ years of experience in Databricks with understanding complex legacy data models and getting that data into the cloud.

Core Experience Areas
  • Extracting DB2/AS400: Experience with Change Data Capture (CDC) or scheduled batch extractions from DB2 into cloud storage. Involves working through JDBC connections, mapping table dependencies, and re-platforming legacy SQL to distributed computing standards.
  • Handling Guidewire Data: Integrating with Guidewire Cloud Data Access (CDA) or InsuranceSuite to replicate complex P&C (Property & Casualty) insurance schemas. Senior engineers parse these highly normalized operational databases and transform them into analytical-friendly schemas in the cloud.
  • Architecture & Pipeline Development

The core of the experience involves transitioning these legacy, row-based stores into a scalable Medallion Architecture (Bronze, Silver, Gold layers).

Medallion Architecture & Optimization
  • Delta Lake Optimization: Using Databricks and Apache Spark to build ETL/ELT data pipelines with ACID transactions. Senior engineers handle schema evolution, upserts, and slowly changing dimensions (SCD Type 2).
  • Business Logic Refactoring: Translating rigid legacy procedural code (e.g., RPG/COBOL background logic, stored procedures) into scalable distributed patterns (PySpark, Spark SQL, and Scala).
  • Data Governance & Observability

A senior engineer is expected to govern vast amounts of incoming and generated data across the enterprise.

Governance & Quality
  • Unity Catalog: Implementing strict data governance, lineage tracing, and table-level security.
  • Data Quality: Automating data validation frameworks to ensure a seamless transition from legacy to modern systems without data loss or corruption.
  • Integration with the Databricks Platform Ecosystem

Moving beyond basic storage to utilizing the full power of the Databricks Data Intelligence Platform.

Platform Utilization
  • Serverless Compute: Managing Databricks serverless resources, ensuring optimal cluster sizing, and reducing compute costs.
  • Streaming and Batch Workflows: Building event-driven pipelines using features like Databricks Auto Loader to ingest flat files and streaming records directly into Delta tables.
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