Data Enablement Lead
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About the role
What we seek:
Hands-On Engineering & Tooling
Data Pipelines & Backend : Build, maintain, and optimize data pipelines feeding our BU’s analytics layer. Work across our core data platform ( Apache Hive ) and high-performance OLAP backend ( Apache Doris ).
Next-Gen Data Tools: Architect non-data-person-facing tools to automate data access, such as setting up data cubes/semantic layers and building AI/LLM-powered data bots (e.g., text-to-SQL / natural language data querying).
Architecture & Standards: Establish best practices for data modeling, pipeline monitoring, and data quality within our BU's local repository
Technical Project Management & Coordination
Cross-Team Collaboration: Act as the primary technical interface between analytics / operational team and the central platform data engineering team.
Project Delivery: Scope, prioritize, and manage the end-to-end lifecycle of analytics engineering projects, translating non-technical needs into clear technical specifications.
Enablement & Stakeholder Management: Educate and support operational team on self-serve tools, documentation, and data literacy initiatives.
What you'll need:
Technical Skills
Data Engineering & Warehousing: 5+ years of experience in data engineering, analytics engineering, or technical data product management.
Stack Expertise: Strong proficiency in SQL and Python . Solid experience with large-scale data warehouses ( Apache Hive ) and modern OLAP engines ( Apache Doris , ClickHouse, StarRocks, or similar).
Data Product & AI Innovation: Demonstrated interest or experience in building interactive data tools (e.g., Cube.js, semantic layers) or leveraging AI/LLM frameworks (e.g., LangChain, OpenAI APIs, Text-to-SQL pipelines) to simplify data retrieval.
Data Modeling: Deep understanding of dimensional modeling, star schemas, data aggregation, and query optimization techniques.
Project & Stakeholder Management
Proven ability to coordinate across cross-functional engineering teams with competing business priorities.
Strong project management skills—able to track dependencies, mitigate risks, and manage stakeholder expectations clearly without micro-managing.
Pragmatic approach to the "Build vs. Coordinate" tradeoff—knowing when to rely on central platforms versus when to build lightweight local solutions.
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