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Ratings and Reviews 46 Ratings

What is Cloudera?

Manage and safeguard the complete data lifecycle from the Edge to AI across any cloud infrastructure or data center. It operates flawlessly within all major public cloud platforms and private clouds, creating a cohesive public cloud experience for all users. By integrating data management and analytical functions throughout the data lifecycle, it allows for data accessibility from virtually anywhere. It guarantees the enforcement of security protocols, adherence to regulatory standards, migration plans, and metadata oversight in all environments. Prioritizing open-source solutions, flexible integrations, and compatibility with diverse data storage and processing systems, it significantly improves the accessibility of self-service analytics. This facilitates users' ability to perform integrated, multifunctional analytics on well-governed and secure business data, ensuring a uniform experience across on-premises, hybrid, and multi-cloud environments. Users can take advantage of standardized data security, governance frameworks, lineage tracking, and control mechanisms, all while providing the comprehensive and user-centric cloud analytics solutions that business professionals require, effectively minimizing dependence on unauthorized IT alternatives. Furthermore, these features cultivate a collaborative space where data-driven decision-making becomes more streamlined and efficient, ultimately enhancing organizational productivity.

What is AnalyticsCreator?

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.

Media

Media

Integrations Supported

Assure Security
Azquo
Azure DevOps
Bluemetrix
Dataguise
Decision Moments
Denodo
GigaSpaces
GitHub
IBM InfoSphere Information Server
IRI DarkShield
Imperva DDoS Protection
Modulos AI Governance Platform
SQL Server on Azure Virtual Machines
Style Intelligence
Trillium Geolocation
Unravel
Velotix

Integrations Supported

Assure Security
Azquo
Azure DevOps
Bluemetrix
Dataguise
Decision Moments
Denodo
GigaSpaces
GitHub
IBM InfoSphere Information Server
IRI DarkShield
Imperva DDoS Protection
Modulos AI Governance Platform
SQL Server on Azure Virtual Machines
Style Intelligence
Trillium Geolocation
Unravel
Velotix

API Availability

Has API

API Availability

Has API

Pricing Information

Pricing not provided
Free Version
Free Trial Offered?

Pricing Information

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
Free Trial Offered?

Supported Platforms

SaaS
Android
iPhone
iPad
Windows
Mac
On-Prem
Chromebook
Linux

Supported Platforms

SaaS
Android
iPhone
iPad
Windows
Mac
On-Prem
Chromebook
Linux

Customer Service / Support

Standard Support
24 Hour Support
Web-Based Support

Customer Service / Support

Standard Support
24 Hour Support
Web-Based Support

Training Options

Documentation Hub
Webinars
Online Training
On-Site Training

Training Options

Documentation Hub
Webinars
Online Training
On-Site Training

Company Facts

Organization Name

Cloudera

Date Founded

2008

Company Location

United States

Company Website

www.cloudera.com

Company Facts

Organization Name

AnalyticsCreator

Company Location

Germany

Company Website

www.analyticscreator.com

Categories and Features

Big Data

Collaboration
Data Blends
Data Cleansing
Data Mining
Data Visualization
Data Warehousing
High Volume Processing
No-Code Sandbox
Predictive Analytics
Templates

Business Intelligence

Ad Hoc Reports
Benchmarking
Budgeting & Forecasting
Dashboard
Data Analysis
Key Performance Indicators
Natural Language Generation (NLG)
Performance Metrics
Predictive Analytics
Profitability Analysis
Strategic Planning
Trend / Problem Indicators
Visual Analytics

Data Management

Customer Data
Data Analysis
Data Capture
Data Integration
Data Migration
Data Quality Control
Data Security
Information Governance
Master Data Management
Match & Merge

Data Science

Access Control
Advanced Modeling
Audit Logs
Data Discovery
Data Ingestion
Data Preparation
Data Visualization
Model Deployment
Reports

Data Warehouse

Ad hoc Query
Analytics
Data Integration
Data Migration
Data Quality Control
ETL - Extract / Transfer / Load
In-Memory Processing
Match & Merge

Machine Learning

Deep Learning
ML Algorithm Library
Model Training
Natural Language Processing (NLP)
Predictive Modeling
Statistical / Mathematical Tools
Templates
Visualization

Categories and Features

Data Engineering

AnalyticsCreator is a design tool focused on metadata that caters to Microsoft data engineering teams. It allows engineers to centrally establish structures, transformations, loading processes, and dependencies, subsequently producing native SQL, SSIS, Azure Data Factory, Microsoft Fabric, and Power BI components. The application promotes reusable patterns for data ingestion, transformation, historization, slowly changing dimension (SCD) handling, and deployment, minimizing manual engineering efforts. Additionally, it maintains connections between lineage, documentation, and the impact of changes in relation to the overall project design.

Data Integration

AnalyticsCreator offers a metadata-centric approach to designing and generating data integration solutions within Microsoft ecosystems. Teams can centrally define various elements such as data sources, mappings, transformations, dependencies, and loading rules, which allows for the automatic creation of native SQL, SSIS, and Azure Data Factory assets. This process not only standardizes repetitive integration practices but also maintains the lineage, documentation, and ownership associated with the resulting Microsoft technologies.

Data Lake

AnalyticsCreator enables Microsoft data teams to craft regulated ingestion and transformation workflows tailored for data lake and analytical frameworks. By utilizing metadata to define sources, mappings, transformations, and dependencies, it can produce native Microsoft implementation components suitable for various Azure and Microsoft Fabric applications. Instead of functioning as the data lake's runtime environment, AnalyticsCreator serves as the design and generation framework.

Data Lineage

AnalyticsCreator incorporates lineage directly into the engineering framework instead of treating it as an isolated documentation task. By maintaining links between sources, tables, transformations, references, and downstream analytical components through project metadata, teams can effectively track data flow and discern dependencies within the entire solution. This lineage functionality also aids in conducting impact assessments when there are alterations to models or transformations.

Database Change Impact Analysis
Filter Lineage Links
Implicit Connection Discovery
Lineage Object Filtering
Object Lineage Tracing
Point-in-Time Visibility
User/Client/Target Connection Visibility
Visual & Text Lineage View

Data Management

AnalyticsCreator enables Microsoft data teams to oversee the design and development of structured data environments via a unified metadata framework. It ensures that sources, schemas, tables, relationships, transformations, and dependencies are all linked to the resulting implementation. This interconnectedness enhances transparency regarding project architecture, lineage, and the effects of changes, while also assisting teams in maintaining uniform modeling and engineering standards.

Customer Data
Data Analysis
Data Capture
Data Integration
Data Migration
Data Quality Control
Data Security
Information Governance
Master Data Management
Match & Merge

Data Modeling

AnalyticsCreator offers a model-centric approach for crafting data warehouses and data solutions within the Microsoft data ecosystem. Teams can collaboratively establish dimensional, 3NF, and hybrid models, outlining relationships, transformations, historization rules, and dependencies. Once the model is validated, it facilitates the creation of native SQL, pipelines, documentation, semantic models, and deployment artifacts, ensuring that the design remains consistent with implementation as the project evolves.

Data Warehouse

Speed up the creation of your data warehouses by streamlining intricate model designs, such as dimensional, data mart, and data vault structures. AnalyticsCreator boosts scalability for extensive data environments while enhancing governance through its automation capabilities. Produce optimized code for top platforms like Snowflake, Azure Synapse, and MS Fabric. Elevate the quality, consistency, and governance of your data warehouse throughout its lifecycle using automated tools for schema evolution and the management of historical data. Foster collaboration with version control and automated documentation, facilitating smooth teamwork and quick iterations. Utilize AnalyticsCreator to address the challenges of contemporary data warehouse development through CI/CD and agile methodologies, significantly shortening development timeframes.

Ad hoc Query
Analytics
Data Integration
Data Migration
Data Quality Control
ETL - Extract / Transfer / Load
In-Memory Processing
Match & Merge

ETL

AnalyticsCreator offers a design and generation framework driven by metadata for ETL and ELT workflows within the Microsoft data ecosystem. Data teams can centrally configure mappings, transformations, loading procedures, dependencies, and historical tracking, allowing for the automatic creation of native SQL procedures, SSIS packages, and Azure Data Factory pipelines. It promotes the use of reusable patterns for data ingestion, delta loading, slowly changing dimensions (SCD) processing, and repeatable transformations, all while avoiding the need for a proprietary production runtime.

Data Analysis
Data Filtering
Data Quality Control
Job Scheduling
Match & Merge
Metadata Management
Non-Relational Transformations
Version Control

Metadata Management

Metadata serves as the cornerstone of AnalyticsCreator. The primary project framework links various data structures, transformations, business regulations, interrelations, dependencies, data lineage, documentation, and the implementation that is generated. This integration empowers data teams to leverage metadata not just for outlining a solution, but also to proactively facilitate generation, conduct change analysis, and manage delivery in a controlled manner across Microsoft data initiatives.

Semantic Layer

AnalyticsCreator has the capability to produce governed analytical and semantic models specifically for Microsoft Power BI and Analysis Services, utilizing the same metadata that is employed for designing the foundational data warehouse. This ensures that relationships, dimensions, and model frameworks are consistently linked to the broader project design, enabling teams to maintain synchronization between analytical models and the upstream data structures and dependencies.

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