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Data Engineer

Job Description - Data Engineer




This is a remote position.



No of positions- 2




Experience- 5-7 + years




Work Location: Remote




Screening Checklist:




Proficiency in interpreting data transformation logic written in T-SQL and implementing equivalent processes within Databricks





Ability to design and implement data ingestion pipelines using Azure Data Factory (from source to RAW layer)




Basic knowledge of C# and Sql(atleast read the coding, no need to write)





Experience in collecting and analyzing performance metrics to optimize data ingestion pipelines




Competence in performing performance optimizations for Databricks read/write queries as needed





Job Overview




We are currently seeking experienced Data Engineers (5–7 years of experience) with strong expertise




in Databricks, PySpark, and Data Fabric concepts to contribute to an ongoing enterprise data




transformation initiative. The ideal candidates will have solid hands-on engineering skills, a good




understanding of modern data architectures, and the ability to work collaboratively within cross-functional




teams.




Key capabilities and expectations include:




• Strong experience in understanding and translating data transformation logic written in T-SQL and implementing equivalent, efficient transformations in Databricks using PySpark,




aligned with Data Fabric design principles.




• Hands-on experience in designing and implementing data ingestion pipelines using Azure




Data Factory, enabling reliable data movement from source systems to the RAW and curated




data layers within a Data Fabric ecosystem.




• Working knowledge of Data Fabric concepts, including metadata-driven pipelines, data




integration, orchestration, data lineage, and governance, with the ability to apply these principles




in day-to-day engineering tasks.




• Experience in monitoring, collecting, and analyzing pipeline performance metrics to identify




inefficiencies and support optimization of data ingestion and processing workflows.




• Practical experience in performance tuning and optimization of Databricks read and write




operations, including partitioning, file formats, and query optimization techniques.




• Ability to collaborate closely with senior engineers and architects, contribute to design




discussions, follow best practices, and support the continuous improvement of the data platform.




• Strong problem-solving skills, eagerness to learn, and the ability to work effectively with cross




functional teams, including data analysts, data scientists, and business stakeholders.




This role is ideal for professionals looking to deepen their expertise in Databricks and Data Fabric




architectures while contributing to scalable, well-governed, and high-performance enterprise data




solutions.







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