Quick Overview
Seniority
Mid Senior
Work mode
Hybrid
Location
United States
Posted
22 hours ago
SQLShellAWSApacheAzureHivePython
Job Description
Job Title: Iceberg DBA / Lakehouse Operations Engineer
Location: Remote
Duration: Long-Term
Openings: 5
- L3 Senior Iceberg DBA: 2 positions
- L2 Iceberg DBA: 3 positions
Job Summary:
Seeking Iceberg DBA / Lakehouse Operations Engineers to support an enterprise-scale Lakehouse platform and large-scale data modernization initiatives (Hive/Teradata → Apache Iceberg). The role focuses on Iceberg table operations, performance tuning, metadata management, production support, and multi-engine query optimization.
Required Skills – L3 Senior:
- 10+ years Big Data/Data Engineering/DBA/Data Operations
- 2+ years hands-on Apache Iceberg production experience
- 6+ years Cloudera/CDP experience
- Expert knowledge of Iceberg table optimization, compaction, metadata management, and partition evolution
- Strong Spark, Hive, Impala performance tuning
- Experience with TB/PB-scale data environments
- P1/P2 production incident support and RCA
- Experience with Hive/Teradata → Iceberg migrations
- Data modeling and Medallion Architecture experience
Required Skills – L2:
- 4–6 years Big Data/Data Operations/DBA experience
- 1+ year Apache Iceberg or similar technologies (Hive/Delta/Hudi)
- 4+ years Cloudera/CDP
- Hands-on Iceberg table operations and maintenance
- Experience with Spark SQL, Hive, or Impala
- Production support, monitoring, and troubleshooting
- Understanding of partitioning, Parquet/ORC, and distributed query processing
- Knowledge of Bronze/Silver/Gold Lakehouse architecture
Preferred Skills:
- Hive/Teradata to Iceberg migration
- Cloudera CDP – CDE/CDW
- AWS/Azure cloud experience
- Python/Shell scripting
- NiFi and/or Trino
- Data quality, governance, validation, and reconciliation
- Ranger/RBAC security
Key Responsibilities:
- Manage and optimize Iceberg tables at enterprise TB/PB scale.
- Perform compaction, snapshot expiration, metadata cleanup, and orphan file cleanup.
- Optimize partitioning, file sizes, clustering, and query performance.
- Support Spark, Hive, and Impala workloads.
- Troubleshoot production issues and participate in L2/L3 on-call support.
- Handle P1/P2 incidents, RCA, and preventive actions.
- Support enterprise data modernization and migration initiatives.
- Maintain data reliability, consistency, security, and governance.
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