Enterprise Data Architect Fundamentals
Authors/Creators
Description
This article provides a foundational understanding of Enterprise Data Architecture (EDA), focusing on the core principles and best practices that support the effective collection, management, integration, and governance of data across organizations. It covers the key frameworks that guide EDA implementation, including the Zachman Framework, TOGAF, CMMI, and DoDAF, each offering a structured approach to data architecture in various organizational domains.
The article also emphasizes the importance of data quality and its direct correlation with business processes and performance. It explains how poor data quality can lead to unreliable business reports and suboptimal decision-making. The article further outlines common challenges in data architecture, such as handling data complexity, ensuring scalability, and complying with domain-specific regulations, including HIPAA and GDPR.
By presenting these frameworks, practices, and challenges, this article serves as a comprehensive guide to building and managing enterprise data architecture that supports organizational goals and enhances operational efficiency.
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Enterprise Data Architect Fundamentals.pdf
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(209.6 kB)
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