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Data Modeler

Quess Corp Limited

2 - 5 years

Hyderabad

Posted: 29/05/2026

Job Description

Key Responsibilities

  • Data Architecture & Modeling: Design, develop, and maintain conceptual, logical, and physical data models tailored to the complexities of the retail industry (e.g., point-of-sale, inventory management, customer lifecycle, and e-commerce data).
  • Dimensional Modeling (Kimball): Apply strict Kimball Concepts and methodologies to design robust star and snowflake schemas that support high-performing BI and reporting solutions.
  • Medallion Architecture Implementation: Architect data flows utilizing the Medallion Architecture (Bronze, Silver, Gold layers) within our data lake/lakehouse environment to progressively refine and enrich raw data into business-ready assets.
  • Semantic Layer Design: Design and govern a unified Semantic Layer to bridge the gap between complex data structures and business users. Ensure consistent business definitions, metrics, and dimensions across all BI platforms (e.g., Power BI, Tableau, Looker).
  • Collaboration & Translation: Partner closely with data engineers, product managers, and retail business stakeholders (merchandising, supply chain, marketing) to translate complex business requirements into scalable data structures.
  • Data Governance & Quality: Establish data modeling standards, maintain comprehensive data dictionaries, and ensure data integrity and compliance across all data products.

Qualifications

  • Experience: 5+ years of dedicated experience in data modeling and data architecture, specifically within the Retail or FMCG industry.
  • Methodology Mastery: Deep, demonstrable expertise in Dimensional Modeling and the Kimball lifecycle.
  • Modern Data Architecture: Proven experience designing data models for cloud data warehouses/lakehouses (e.g., Snowflake, Databricks, BigQuery) utilizing the Medallion Architecture.
  • Semantic Layer Expertise: Hands-on experience designing and implementing semantic layers or metrics layers (using tools like dbt, LookerML, AtScale, or SSAS).
  • Technical Skills: Advanced SQL proficiency and experience with industry-standard data modeling tools (e.g., Erwin, Hackolade, Lucidchart, or SQLDBM).
  • Retail Domain Knowledge: Strong understanding of retail-specific data domains, including basket analysis, inventory optimization, omni-channel sales, and customer 360.
  • Communication: Excellent ability to communicate complex technical concepts to non-technical business stakeholders.

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