Data Engineer (Databricks)

location_onSingaporeschedule19 hours ago
historyMinimum experience:5+ years
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Job description

Required Technical Skills — Databricks

  • Unity Catalog — catalogue/schema design, access control, and data lineage
  • Lakeflow / Delta Live Tables for pipeline orchestration; Delta Lake table format
  • Databricks SQL and cluster/workspace administration (compute policies, pools, cost management)
  • Databricks Asset Bundles (DABs) and Databricks Repos for CI/CD
  • PySpark / Spark SQL for large-scale data transformation
  • Working knowledge of Databricks system tables (audit logs, billing/usage, query history) for observability
  • Minimum 5 years of hands-on experience in Data Engineering, Data Platform Engineering, or related disciplines.
  • Minimum 3 years of hands-on experience with Databricks involving data pipeline development, platform administration, governance, and optimization.

Required Technical Skills — Common

  • Strong SQL and Python (PySpark or general-purpose) for data engineering
  • Data modeling — dimensional design, star/snowflake schemas, semantic layers
  • CI/CD pipelines (e.g., Azure DevOps, GitHub Actions, GitLab CI) for data engineering workflows
  • Infrastructure-as-code (Terraform preferred) for provisioning cloud data platform resources
  • Hands-on experience on at least one hyperscaler — AWS, Azure, or Google Cloud

Understanding of data security and compliance frameworks applicable to government/public-sector environments

Skills mentioned

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