
AnalyticsCreator helps Microsoft data teams turn governed design into deployable data solutions without introducing a proprietary runtime layer.
Teams use AnalyticsCreator to define warehouse structures, transformation logic, historisation rules, relationships and dependencies in a central model. From that model, the application can generate native implementation assets for technologies such as SQL Server, SSIS, Azure Data Factory, Microsoft Fabric and Power BI.
The approach is designed for organisations that want to standardise how data warehouses and data products are engineered while keeping full control of the resulting code and project artefacts. Generated outputs can be integrated into existing Git, Azure DevOps and CI/CD workflows for versioning, review and controlled deployment across environments.
AnalyticsCreator supports dimensional, 3NF and hybrid modelling as well as common engineering patterns including delta loading, Slowly Changing Dimensions, snapshots and historisation. Documentation, lineage and dependency information are maintained alongside the project design, making it easier to assess the impact of proposed changes and keep implementation aligned with the underlying model.
The AnalyticsCreator Governed Control Model provides the foundation for this process by keeping business meaning, technical structures and implementation logic connected. Design Intelligence builds on that context by making governed project metadata, lineage, dependencies and design rules available to authorised AI tools and agents.
Typical use cases include modernising SQL Server and SSIS estates, building Microsoft Fabric solutions, standardising Power BI delivery and creating repeatable data warehouse and data product engineering processes.
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Epsilon3 is the leading AI-powered procedure and resource management tool designed for teams building, testing, and operating advanced products and systems.
✔ Save Time & Money
Avoid costly delays, mistakes, and inefficiencies by automatically tracking procedures and resources.
✔ Prevent Failures
Ensure the right step is completed at the right time with conditional logic and built-in revision control.
✔ Optimize Collaboration
Real-time progress updates and role-based sign-offs keep your stakeholders on the same page.
✔ Continuously Improve
Advanced data analytics and automated reporting enable rapid iteration and data-driven decisions.
Epsilon3 is trusted by industry leaders like NASA, Blue Origin, Firefly Aerospace, Sierra Space, Redwire, Shift4, AeroVironment, Commonwealth Fusion Systems, and other commercial and government organizations.
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Digna
digna is a next-generation data quality and observability platform designed to help organizations build trust in their data, detect issues early, and understand how their data behaves over time.
As data environments grow in complexity, traditional monitoring approaches are no longer enough. digna goes beyond static checks and dashboards by combining observability with analytics, enabling teams to not only detect anomalies but also interpret patterns, trends, and changes in data behavior.
Comprehensive Data Observability Across Your Entire Platform
digna is built as a modular platform with five independent components that can be deployed together or separately, depending on your needs:
* Data Anomalies — Detect unexpected changes in data volumes, distributions, and behavior using AI-driven anomaly detection without manual rules
* Data Analytics — Understand trends, patterns, and seasonality through built-in time-series analysis
* Data Timeliness — Monitor data delivery and ensure pipelines meet expected arrival times
* Data Validation — Enforce data quality rules and compliance with flexible, scalable validation logic
* Data Schema Tracker — Detect schema changes in real time to prevent pipeline failures and downstream issues
Together, these modules provide full visibility into both data quality and business data behavior.
Key Advantages
* In-database processing ensures data never leaves your environment, supporting privacy, security, and regulatory compliance
* AI-driven anomaly detection eliminates the need for manually defined rules
* Built-in analytics capabilities enable teams to understand data trends and behavior without external tools
* Scalable validation framework supports consistent data quality across complex data environments
* Schema change tracking protects pipelines from breaking changes
Designed for Modern Data Platforms
digna integrates seamlessly with leading data platforms including Snowflake, Databricks, Teradata, and more.
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Match Data Pro
Match Data Pro is an advanced solution designed for data quality management that excels in integrating, cleansing, analyzing, matching, removing duplicates, and consolidating records from a multitude of files, databases, and systems with impressive precision and efficiency. This tool incorporates state-of-the-art AI-driven fuzzy matching along with flexible rule-based logic to detect duplicates and inconsistencies in large datasets, enabling users to rectify errors, standardize formats, and produce reliable golden records without requiring any programming skills. Additionally, it provides thorough data profiling with key metrics to pinpoint quality issues before processing, powerful data cleansing capabilities for normalizing and standardizing data, and address verification features that enhance overall accuracy. Beyond these functions, Match Data Pro utilizes Senzing AI for entity resolution and allows for customizable matching algorithms that adapt to minor discrepancies in data, ensuring efficient processing that can handle millions of records. To further streamline operations, it supports project job automation through scheduling, reusable rules, and easy API integrations, positioning itself as a well-rounded solution for comprehensive data management. Ultimately, this tool not only simplifies the data management process but also empowers organizations to maintain high-quality data standards consistently.
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