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Sr Databricks Certified Data Engineer
Derex Technologies Inc · Remote, New Jersey, United States
About The Role
Duration: Full Time
 
Job Description
- Sr Databricks Certified Data Engineer
- Must Have: Databricks Certified Data Engineer Professional Certification.
- Strongly preferred: Prior experience working in the Databricks Partner Program Databricks Partner Champion Certificate
 
- 10+ years of experience in data engineering, data platforms & analytics.
- Comfortable writing code in either Python or Scala.
- Extensive Working knowledge of Databricks is required.
- Experience with advanced Databricks concepts such as Genie Spaces, Agents, and Genie Code.
- Experience handling or leading large scale projects/customers.
- Working knowledge of two or more common Cloud ecosystems (AWS, Azure, GCP) with expertise in at least one.
- Deep experience with distributed computing with Apache Spark™️ and knowledge of Apache Spark™️ runtime internals Familiarity with CI/CD for production deployments Working knowledge of MLOps Capable of design and deployment of highly performant end-to-end data architectures Experience with technical project delivery – managing scope and timelines Documentation and white-boarding skills Experience working with clients and managing conflicts Experience in building scalable streaming and batch solutions using cloud-native components
 
Here is some feedback I got for one of the consultant that took the interview
- Not strong in Data engineering and advanced concepts.
- No Experience with advanced Databricks concepts such as Genie Spaces, Agents, and Genie Code.
- No experience handling or leading large scale projects/customers.
 
Key Skills
- They want someone with. Spark fundamentals — Spark architecture, DataFrames, partitions, shuffles, joins, and performance behavior.
- Delta Lake — ACID tables, schema evolution, merges, optimization, and reliable lakehouse storage patterns.
- ETL / pipeline design — batch and incremental pipelines, medallion-style thinking, and production pipeline design.
- Lakeflow /SDP / Jobs / workflows — orchestration, declarative pipelines, and workload deployment on Databricks.
- Ingestion patterns — landing data from databases, files, streams, and connectors into bronze/silver/gold pipelines.
- Performance tuning — cluster sizing, file layout, pipeline optimization, and Spark tuning best practices.
- Data modeling and warehousing — dimensional modeling, warehouse migration patterns, and serving BI/reporting use cases.
- CI/CD and deployment — asset bundles, deployment workflows
 
Regards,
 
Manoj Goud
Derex Technologies INC
Contact : 973-834-5005 Ext 206
All your information will be kept confidential according to EEO guidelines.
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