Posted:1 day ago|
Platform:
Hybrid
Full Time
We are in search of an experienced Data Modeler who possesses a deep understanding of traditional data stores such as SQL Server and Oracle DB, as well as proficiency in Azure/Databricks cloud environments. The ideal candidate will be adept at comprehending business processes and deriving methods to define analytical data models that support enterprise-level analytics, insights generation, and operational reporting.
- Collaborate with business analysts and stakeholders to understand business processes and requirements, translating them into data modeling solutions.
- Design and develop logical and physical data models that effectively capture the granularity of data necessary for analytical and reporting purposes.
- Migrate and optimize existing data models from traditional on-premises data stores to Azure/Databricks cloud environments, ensuring scalability and performance.
- Establish data modeling standards and best practices to maintain the integrity and consistency of the data architecture.
- Work closely with data engineers and BI developers to ensure that the data models support the needs of analytical and operational reporting.
- Conduct data profiling and analysis to understand data sources, relationships, and quality, informing the data modeling process.
- Continuously evaluate and refine data models to accommodate evolving business needs and to leverage new data modeling techniques and cloud capabilities.
- Document data models, including entity-relationship diagrams, data dictionaries, and metadata, to provide clear guidance for development and maintenance.
- Provide expertise in data modeling and data architecture to support the development of data governance policies and procedures.
- Bachelor's degree in Computer Science, Information Systems, Data Science, or a related field.
- Proficiency in SQL and experience with data modelling tools (e.g., ER/Studio, ERwin, PowerDesigner).
- Familiarity with Azure cloud services, Databricks, and other big data technologies.
- Understanding of data warehousing concepts, including dimensional modeling, star schemas, and snowflake schemas.
- Ability to translate complex business requirements into effective data models that support analytical and reporting functions.
- Strong analytical skills and attention to detail.
- Excellent communication and collaboration abilities, with the capacity to engage with both technical and non-technical stakeholders.
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