N
Nxp
Data Engineer

Senior Data Engineer

On-siteSeniorData Engineerposted 3w ago
Role summaryAI-generated

This role focuses on architecting and optimizing Databricks-based Lakehouse solutions with a strong emphasis on performance tuning, governance via Unity Catalog, and AI-driven automation to streamline data operations. The ideal candidate will balance hands-on engineering with collaborative problem-solving to resolve bottlenecks and enhance operational efficiency.

Skills required

About this role

Position Summary:

We are seeking a hands-on Data Engineer building on Databricks who is growing their Lakehouse and performance-engineering depth, with a builder's mindset for AI-assisted operations.

Key Responsibilities:

  • Design and develop scalable data pipelines and Lakehouse solutions on Databricks.
  • Build and tune Databricks workloads for performance and cost, including cluster sizing, query optimization, and Delta Lake table design.
  • Implement and utilize best practices for partitioning, clustering, and workload isolation.
  • Track performance trends, identify high-cost queries, and partner with source teams and end users to resolve long-running loads.
  • Design and operationalize Unity Catalog for data governance — access control, lineage, and security.
  • Build monitoring and self-healing automation using Databricks-native AI and agentic capabilities.
  • Contribute to CI/CD workflows for Databricks assets, applying DevOps best practices for deployment and release management.
  • Deliver assigned pipelines and workloads with guidance from senior engineers, growing toward independent ownership.

What Success Looks Like (First 6–12 Months)

  • In your first 6–12 months, you'll independently build and tune production pipelines, implement Unity Catalog access controls as designed, and contribute to monitoring automation.

Required Qualifications:

  • Bachelor or Master’s degree in Computer Science, Information Technology or equivalent years of relevant experience.
  • 3+ years of data engineering experience (with a focus on data integration), including 1+ years hands-on Databricks in enterprise settings.
  • Solid understanding of Databricks Lakehouse architecture, Delta Lake, Unity Catalog, and Workflow orchestration.
  • Working ability to tune Spark workloads for cost and performance.
  • Strong Python (PySpark) and SQL skills.
  • Working knowledge of CI/CD practices and DevOps principles applied to data workloads.
  • Experience with observability tooling for Databricks.

Preferred Qualifications:

  • Experience with Databricks-native AI capabilities and agentic frameworks.
  • Familiarity with Databricks Serverless Compute and DBSQL performance tuning.
  • A Databricks Certified Professional is nice to have.
  • Exposure to Infrastructure-as-Code is a plus.

Competencies:

  • Performance-engineering mindset — measures, tunes, and re-measures.
  • Curiosity for AI-native operations and continuous automation.
  • Strong sense of platform ownership — quality, cost, and reliability.
  • Effective communication with engineering peers, vendors, and business stakeholders.


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Senior Data Engineer at Nxp — Bangalore, India