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Databricks Machine Learning Lead @ Accenture

Kuala Lumpur, Exchange 106OnsiteFull-timePosted 3 days ago

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About this role

Summary Our talented Data & AI Practice is made up of globally recognized experts - and there’s room for more analytical and ambitious data professionals. If you’re passionate about helping clients make better data-driven decisions to tackle their most complex business issues, let’s talk. Take your skills to a new level and launch a career where you can truly do what matters.

The Databricks M/L Technical Lead is a senior, hands-on role responsible for the design, development, and delivery of highly scalable, secure, and performant data solutions on the Databricks Lakehouse Platform. It is expected to provide technical leadership to a team of engineers, defining coding standards, implementing architectural patterns, and ensuring the delivery of high-quality data products.

Key Responsibilities

• Lead the Design: Define and implement robust data architectures utilizing the Databricks ecosystem, including Delta Lake, Unity Catalog, Machine Learning Models and Databricks Workflows.

• Hands-on Development: Serve as the most senior developer, writing high-quality, production-grade code in PySpark/Scala and SQL for complex batch and streaming ETL/ELT pipelines.

• Performance Optimization: Lead performance tuning and optimization efforts for large-scale Spark jobs, ensuring efficient cluster utilization and cost management

• Standards & Best Practices: Define and enforce technical standards, code quality, testing frameworks (unit, integration), and DataOps/CI/CD pipelines for the engineering team.

. Skills & Experiences

• 8+ years of experience in machine learning, data science, or MLOps, with at least 4+ years focused specifically on the Databricks Lakehouse Platform.

• Expert proficiency in Python and PySpark/Scala for large-scale data processing and machine learning.

• Deep understanding and practical experience with Delta Lake architecture and optimization techniques.

• Proven expertise implementing MLOps principles using MLflow (Tracking, Registry, Projects, and Deployment).

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