Azure Senior Data Lead Leads modernization of Python
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Azure Senior Data Lead Leads modernization of Python applications into scalable PySpark solutions on Azure Databricks Role Purpose Lead the modernization and migration of existing Python object-oriented applications into scalable PySpark and Spark SQL data-processing solutions on Azure Databricks - bringing a strong blend of software engineering, data engineering, cloud architecture, and performance optimization. Key Responsibilities * Analyze existing Python OOP applications and redesign single-node processing logic for distributed Spark execution. * Design, develop, and deploy enterprise-scale data pipelines on Azure Databricks; build reusable PySpark frameworks and utility modules. * Implement Delta Lake solutions using the Bronze-Silver-Gold architecture. * Build robust ETL/ELT pipelines with Azure Data Factory, ADLS Gen2, and Azure Synapse Analytics. * Implement data quality, reconciliation, validation, and monitoring frameworks. * Optimize Spark jobs (partitioning, bucketing
Requirements
caching, broadcast joins, Adaptive Query Execution, Delta optimization) and benchmark converted applications against original Python implementations. Core Skills * Python (expert), OOP, and advanced Python design patterns * PySpark, Spark SQL, and SQL * Azure Databricks, Azure Data Factory, ADLS Gen2 * Apache Spark, Delta Lake, Data Lakehouse architecture, distributed computing Must-have (per requisition): Python, Azure Databricks, Azure Data Factory (ADF), MS SQL, Oracle PL/SQL. Good to have: PySpark; certifications in Azure Data Factory, Azure Databricks, SQL, Oracle, or Python. Experience & Expected Outcome Senior data engineering leader with proven delivery of large-scale Databricks modernization programs. Expected outcome: existing Python applications converted into scalable, cost-efficient, enterprise-grade data solutions on Azure Databricks with proven performance parity.
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