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About

AnalyticsCreator is a metadata-driven design application for data warehouse automation and data product engineering across the Microsoft data stack. At its core is the AnalyticsCreator Governed Control Model, which keeps business meaning, data structures, transformation rules, dependencies and technical implementation connected in one controlled project model. Data teams design the required architecture in AnalyticsCreator, then generate native Microsoft assets from that design. Generated assets can include SQL Server objects, SSIS packages, Azure Data Factory pipelines, Microsoft Fabric components, deployment artefacts and Power BI semantic models. AnalyticsCreator supports dimensional, 3NF and hybrid modelling approaches together with ingestion, transformations, delta loading, historisation, Slowly Changing Dimensions, snapshots and repeatable data-processing patterns. Changes made in the model can be propagated across dependent project assets, while lineage, documentation and impact analysis remain connected to the underlying design. This helps teams reduce repetitive engineering work, standardise delivery and understand the effect of change before regenerating affected assets. AnalyticsCreator generates native Microsoft technology rather than requiring a proprietary runtime. Organisations retain ownership of the resulting implementation and can integrate generated assets into existing Git, Azure DevOps and CI/CD processes. Design Intelligence extends this governed project context into AI-assisted data engineering by giving authorised AI tools and agents structured access to metadata, lineage, dependencies and design rules. Typical use cases include enterprise data warehouse development, Microsoft Fabric adoption, SQL Server and SSIS modernisation, governed Power BI delivery, SAP-to-Microsoft analytics architectures and repeatable data product engineering.

About

Set up your automated data catalog in just 15 minutes, and receive column-level lineage, Entity Relationship (ER) diagram, and auto-populated documentation within 24 hours. Easily find, tag, and add documentation to your data so everyone can find the right dataset for their use case. Select Star automatically detects and displays your column-level data lineage. You can now trust the data, knowing where it came from. Select Star automatically surfaces how your company uses data. That means you can identify relevant data fields without needing to ask someone else. Select Star treats your data with AICPA SOC 2 Security, Confidentiality, and Availability standards, making sure your data is always safe and sound.

Platforms Supported

Windows Supported
Mac Not Supported
Linux Not Supported
Cloud Supported
On-Premises Supported
iPhone Not Supported
iPad Not Supported
Android Not Supported
Chromebook Not Supported

Platforms Supported

Windows Not Supported
Mac Not Supported
Linux Not Supported
Cloud Supported
On-Premises Not Supported
iPhone Not Supported
iPad Not Supported
Android Not Supported
Chromebook Not Supported

Audience

Data Engineers, Data Architects, BI Engineers, Analytics Engineers, Heads of Data, BI Leads, Microsoft Data Platform Teams

Audience

Companies looking for an automated data discovery platform that helps understand their data

Support

Phone Support Supported
24/7 Live Support Not Supported
Online Supported

Support

Phone Support Not Supported
24/7 Live Support Not Supported
Online Supported

API

Offers API Not Supported

API

Offers API Not Supported

Screenshots and Videos

Screenshots and Videos

Pricing

Pricing for AnalyticsCreator depends on deployment size, number of environments, and user licenses required. Contact AnalyticsCreator’s sales team for a tailored quote based on your organization's data engineering needs.
Free Version Not Supported
Free Trial Supported

Pricing

$270 per month
Pricing can be done monthly or annully
Free Version Not Supported
Free Trial Supported

Reviews/Ratings

Reviews/Ratings

Overall 0.0 / 5
ease 0.0 / 5
features 0.0 / 5
design 0.0 / 5
support 0.0 / 5

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Training

Documentation Supported
Webinars Supported
Live Online Supported
In Person Not Supported

Training

Documentation Supported
Webinars Not Supported
Live Online Supported
In Person Not Supported

Company Information

AnalyticsCreator
Germany
www.analyticscreator.com

Company Information

Select Star
Founded: 2020
United States
www.selectstar.com

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Categories

Data Engineering Supported

AnalyticsCreator is a metadata-driven design application for Microsoft data engineering teams. Engineers define structures, transformations, loading logic and dependencies centrally, then generate native SQL, SSIS, Azure Data Factory, Microsoft Fabric and Power BI assets. Repeatable patterns for ingestion, transformation, historisation, SCD processing and deployment reduce manual engineering while keeping lineage, documentation and change impact connected to the project design.

Data Integration Supported

AnalyticsCreator provides metadata-driven design and generation for data integration across Microsoft environments. Teams define sources, mappings, transformations, dependencies and loading rules centrally, then generate native SQL, SSIS and Azure Data Factory implementation assets. This helps standardise recurring integration patterns while preserving lineage, documentation and ownership of the resulting Microsoft technology.

Data Lake Supported

AnalyticsCreator helps Microsoft data teams design governed ingestion and transformation processes for data lake and analytical architectures. Metadata-defined sources, mappings, transformations and dependencies can be used to generate native Microsoft implementation assets for supported Azure and Microsoft Fabric scenarios. AnalyticsCreator provides the design and generation layer rather than acting as the data lake runtime itself.

Data Lineage Supported

AnalyticsCreator captures lineage as part of the engineering model rather than as a separate documentation exercise. Sources, tables, transformations, references and downstream analytical structures remain connected through project metadata, allowing teams to trace data movement and understand dependencies across the solution. Lineage can also support impact analysis when models or transformations change.

Data Management Supported

AnalyticsCreator helps Microsoft data teams manage the design and evolution of structured data estates through a central metadata model. Sources, schemas, tables, relationships, transformations and dependencies remain connected to the generated implementation. This provides greater visibility into project structure, lineage and change impact while helping teams apply consistent modelling and engineering standards.

Data Modeling Supported

AnalyticsCreator provides model-driven design for data warehouses and data products across the Microsoft data stack. Teams can define dimensional, 3NF and hybrid models together with relationships, transformations, historisation rules and dependencies. The approved model then drives generation of native SQL, pipelines, documentation, semantic models and deployment artefacts, keeping design and implementation aligned as the project changes.

Data Warehouse Supported

Accelerate the development of your data warehouses by automating complex model designs, including dimensional, data mart, and data vault architectures. AnalyticsCreator enhances scalability for large data environments and ensures better governance through its automated features. Generate optimized code for leading platforms such as Snowflake, Azure Synapse, and MS Fabric. Improve data quality, consistency, and governance throughout the data warehouse lifecycle with automated tools for schema evolution and historical data handling. Enhance collaboration with version control and automated documentation, enabling seamless teamwork and rapid iteration. Leverage AnalyticsCreator to meet the demands of modern data warehouse development with CI/CD and agile workflows, reducing development cycles significantly.

ETL Supported

AnalyticsCreator provides metadata-driven design and generation for ETL and ELT processes across the Microsoft data stack. Data teams define mappings, transformations, loading logic, dependencies and historisation centrally, then generate native SQL procedures, SSIS packages and Azure Data Factory pipelines. Reusable patterns support ingestion, delta loading, SCD processing and repeatable transformations without introducing a proprietary production runtime.

Metadata is the foundation of AnalyticsCreator. The central project model connects data structures, transformations, business rules, relationships, dependencies, lineage, documentation and generated implementation. This allows data teams to use metadata not only to describe a solution, but to actively drive generation, change analysis and controlled delivery across Microsoft data projects.

Semantic Layer Supported

AnalyticsCreator can generate governed analytical and semantic models for Microsoft Power BI and Analysis Services from the same metadata used to design the underlying data warehouse. Relationships, dimensions and model structures remain connected to the wider project design, helping teams keep analytical models aligned with upstream data structures and dependencies.

Categories

Data Discovery Supported
Data Governance Supported
Data Lineage Supported
Data Management Supported

Data Lineage Features

Database Change Impact Analysis Supported
Filter Lineage Links Supported
Implicit Connection Discovery Supported
Lineage Object Filtering Supported
Object Lineage Tracing Supported
Point-in-Time Visibility Supported
User/Client/Target Connection Visibility Not Supported
Visual & Text Lineage View Supported

Data Management Features

Customer Data Supported
Data Analysis Supported
Data Capture Not Supported
Data Integration Supported
Data Migration Supported
Data Quality Control Supported
Data Security Supported
Information Governance Supported
Master Data Management Supported
Match & Merge Not Supported

Data Warehouse Features

Ad hoc Query Supported
Analytics Supported
Data Integration Supported
Data Migration Supported
Data Quality Control Not Supported
ETL - Extract / Transfer / Load Supported
In-Memory Processing Not Supported
Match & Merge Not Supported

ETL Features

Data Analysis Supported
Data Filtering Supported
Data Quality Control Not Supported
Job Scheduling Not Supported
Match & Merge Supported
Metadata Management Supported
Non-Relational Transformations Supported
Version Control Supported

Data Lineage Features

Database Change Impact Analysis Supported
Filter Lineage Links Not Supported
Implicit Connection Discovery Supported
Lineage Object Filtering Supported
Object Lineage Tracing Supported
Point-in-Time Visibility Not Supported
User/Client/Target Connection Visibility Not Supported
Visual & Text Lineage View Supported

Data Management Features

Customer Data Not Supported
Data Analysis Not Supported
Data Capture Not Supported
Data Integration Supported
Data Migration Supported
Data Quality Control Supported
Data Security Supported
Information Governance Supported
Master Data Management Supported
Match & Merge Not Supported

Data Discovery Features

Contextual Search Not Supported
Data Classification Supported
Data Matching Not Supported
False Positives Reduction Not Supported
Self Service Data Preparation Supported
Sensitive Data Identification Supported
Visual Analytics Not Supported

Data Governance Features

Access Control Supported
Data Discovery Supported
Data Mapping Supported
Data Profiling Not Supported
Deletion Management Not Supported
Email Management Not Supported
Policy Management Supported
Process Management Supported
Roles Management Supported
Storage Management Not Supported

Integrations

Google Cloud BigQuery Supported
Microsoft Power BI Supported
PostgreSQL Supported
Tableau Supported
Amazon Redshift Not Supported
Azure Blob Storage Supported
Azure Data Factory Supported
Azure DevOps Supported
Azure SQL Database Supported
Azure Synapse Analytics Supported
Databricks Not Supported
DuckDB Supported
Hadoop Supported
Metabase Not Supported
Microsoft Azure Supported
Microsoft Dynamics 365 Business Central Supported
Microsoft Fabric Supported
Qlik Sense Supported
SQL Server on Azure Virtual Machines Supported
SSAS Supported

Integrations

Google Cloud BigQuery Supported
Microsoft Power BI Supported
PostgreSQL Supported
Tableau Supported
Amazon Redshift Supported
Azure Blob Storage Not Supported
Azure Data Factory Not Supported
Azure DevOps Not Supported
Azure SQL Database Not Supported
Azure Synapse Analytics Not Supported
Databricks Supported
DuckDB Not Supported
Hadoop Not Supported
Metabase Supported
Microsoft Azure Not Supported
Microsoft Dynamics 365 Business Central Not Supported
Microsoft Fabric Not Supported
Qlik Sense Not Supported
SQL Server on Azure Virtual Machines Not Supported
SSAS Not Supported
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