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AI and data analytics

Transform your enterprise with analytics and AI

Organizations face constant disruption, rising expectations and pressure to do more with less. Data volumes and AI adoption growth demand operationalizing AI at scale for faster, smarter decisions. To meet these needs, organizations must unify data, processes and decisions to enrich data with context for trusted, actionable insights.

75%

of organization are piloting agentic AI

75% of IT leaders reported their organization have deployed, are deploying, or are piloting agentic AI.

80%

of vendors integrate agent capabilities

Agentic AI capabilities are expected to grow rapidly and see widespread adoption,

86%

of manufacturers boost GenAI funding

86% of manufacturing enterprises planned to increase GenAI funding.

How do you move from manual, disconnected workflows to an enterprise that runs on connected data, intelligence and automation?

Unifying data, intelligence and automated execution into a connected layer, where insights flow seamlessly into decisions that drive immediate action.

Optimize your current data and AI systems

Rapidminer software empowers organizations to unlock data insights and harness advanced AI automation for scalable, future-ready solutions.

Simplify the complexity

Accelerate data preparation, modeling and deployment with guided automated workflows. Enable your team to focus on insights and innovation rather than repetitive tasks.

Explore intelligence

Build custom queries for every cross-domain question. Use ontologies to describe what your data means and how it connects across domains, enabling cross-domain agentic AI and analytics at scale.

Accelerate impact

Increase throughput with automation, reusable components, and AI agents that can orchestrate tasks, monitor models and adapt to changing data. Deliver measurable value faster with MLOps and continuous optimization.

Stay connected

Equip your organization with the right data and analytics tools to operationalize AI at scale. Rapidminer software provides the foundation to add context to data, automate intelligently and deploy AI agents with confidence.

Deliver the right data and analytics tools

Equip your organization to operationalize AI at scale. Rapidminer software provides the foundation to add context to data, automate intelligently and deploy AI agents with confidence.

Explore Rapidminer

Enterprise analytics and AI

  • Activate dark data locked in previously inaccessible formats
  • Provide broad, deep, relationship-driven context for AI agents
  • Use history, actions and feedback to create adaptive, continuously learning AI
  • Maintain trust and transparency with a robust governance framework
Capital analytics and AI

Knowledge graph technology

  • Ask complex questions across multiple domains with many joins and entity types—ad hoc
  • Build AI agents that understand your business context across all systems
  • Run fast, large, complex queries at scale
  • Transform and evolve your knowledge graph in-memory at enterprise scale
Knowledge graph

AI agents and agentic AI

  • Automate routine tasks and manage processes, reducing the need for manual intervention
  • Designed to learn from new data and every interaction
  • Engage with AI agents in real time, providing personalized responses and support
  • Use advanced analytics to make real-time, data-driven decisions
AI agents

Self-service data preparation

  • Extract data from any source, including PDFs, spreadsheets and text reports
  • Automate repeatable reconciliation workflows end to end​
  • Access full data lineage, reconciliation configuration and change history
  • Empower users to access, transform and utilize data for informed decisions
Self-service data preparation

SAS language modernization

  • Run SAS language programs without translation or any third-party licenses
  • Combine SAS language, Python, R and other programming languages
  • Build execution decision pipelines with defined rules and conditions
  • Work in the cloud, on-premises, on mainframes or on a hybrid architecture
SAS language modernization

BI and visual analytics

  • Build analytical dashboards and stream processing applications with a point-and-click UI
  • Identify correlations, clusters, trends, exceptions and anomalies in seconds
  • Embed charts, dashboards and reports within business applications
  • Handle data from streams and make comparisons in real time
BI and visual analytics

How does Rapidminer help onboard AI agents?

Rapidminer helps onboard AI agents in three significant ways:

1. A universal data overlay with a semantic enrichment layer Using W3C open standards, the OWL ontologies in our platform are both human- and machine-readable.

This is essential for creating meaningful ontologies and for agreeing on the meanings and relationships in your enterprise data. This machine-readability enables LLMs to understand your enterprise data and to construct explicit queries of your enterprise knowledge graph to answer questions at scale without hallucination. An MCP server enables agentic interaction with the enterprise knowledge graph to be efficient and easy.

2. A code-optional platform for creating descriptive, predictive, and prescriptive insights from your enterprise data.

With our optional code and low-code capabilities, your organization’s subject-matter experts can confidently lead the development of analytics solutions. These solutions will empower agents not only to understand your enterprise data (through the universal data overlay) but also to grasp the behaviors embedded in that data through your business processes. By creating models of your manufacturing, maintenance, sales, marketing, and demand planning processes, you can easily equip agents with the actions and behaviors they need.

3. Agent Studio

With Agent Studio, you can visually craft sophisticated agents and agentic workflows. This powerful environment empowers you to create agents that truly understand your enterprise’s data by drawing insights from the universal data overlay. Furthermore, these agents can grasp your organization’s specific behaviors, processes and actions through a low-code intelligence layer. This comprehensive understanding enables effective orchestration of complex business processes, ensuring governance and oversight.

How does Rapidminer support advanced analytics and handle large-scale data integration?

Rapidminer supports advanced analytics through its distributed, in-memory, massively parallel processing (MPP) graph query engine. This engine facilitates OLAP-style analytics directly on the universal data overlay. Its scalable MPP architecture enables users to pose OLAP-style questions across diverse enterprise data sources within the knowledge graph. This can be done using SPARQL, the HiRez visual analytics framework, or through large language models (LLMs) via our MCP server. We also offer the Gartner MQ-leading Rapidminer AI Studio and AI Cloud for data science and machine learning. These tools support both guided, directed construction of predictive models with visual drag-and-drop workflow editors and coding data scientists working in notebooks and IDEs. A common framework underpins all design experiences, providing unified security, resource management, logging and operationalization. This integrated approach allows subject matter experts (SMEs) and data scientists to collaborate effectively on projects, each utilizing their preferred authoring environment, while Rapidminer natively and seamlessly integrates their code and low-code assets.

Can Rapidminer scale to support large or complex workloads?

Rapidminer is built on a robust, distributed and containerized microservice architecture. It leverages technologies such as Docker, Kubernetes and OpenShift to efficiently scale workloads across hundreds or thousands of CPU cores, GPU cores and terabytes of RAM. Furthermore, Rapidminer AI Studio and Hub can integrate with PBS and HPC platforms, including those powering some of the world’s largest supercomputers and HPC clusters. Every component of the Rapidminer architecture—from Rapidminer Graph Studio and Lakehouse MPP architecture to Rapidminer AI Hub and AI Cloud job agent architecture—operates at cloud-scale, effectively future-proofing any organization’s AI initiatives.

How does Rapidminer help prevent hallucinations in generative AI?

To mitigate the risk of hallucinations in large language models (LLMs), Rapidminer establishes a direct connection between LLMs and agents and your enterprise data. This connection is facilitated by ontologies and a graph data overlay. Consequently, inquiries regarding data trigger direct queries against the actual data, thereby preventing the generation of memorized or fabricated responses. The resulting queries are transparent and inspectable, offering clear insight into agent operations. Rapidminer AI Cloud also provides purpose-built tools that impart specific behaviors and functionalities to agents, complemented by comprehensive tracing and logging. This ensures a complete understanding and auditable record of how results are produced by agents developed using Rapidminer software.

How do data analytics, integration and intelligence work together?

Enterprises thrive on data – the recorded information that underpins every function and system, enabling operation and innovation. This data is continuously generated within the systems that power business processes, from product and service design through manufacturing. This vast ocean of data holds immeasurable value. When data analytics are applied, profound insights are unlocked, driving better decisions and more efficient processes. The intelligence extracted from these analytics is truly transformative.

To harness this potential, our software creates a universal data overlay. This powerful tool integrates and semantically enriches all enterprise data scattered across numerous source systems, each supporting a distinct business process. This integration and enrichment are key because they allow us to ask questions that span across different domains and business functions, providing a holistic view. Ultimately, a universal data overlay is the essential foundation for any effective data analytics capability.

Building on this foundation, our intelligence layer empowers us to develop specific analytics that an organization needs to make superior business decisions. These analytics can take various forms:

Descriptive analytics, such as a sales dashboard, provide a clear picture of past performance, including sales effectiveness and revenue from recent deals.

Predictive models can inform a plant operator precisely when to replace a critical part, preventing costly unplanned failures. Prescriptive models can even automatically set optimal parameters for product manufacturing, ensuring peak efficiency.

In essence, we view data analytics, integration, and intelligence as a seamlessly integrated set of capabilities. These are absolutely essential for driving data-driven decisions throughout an enterprise. That’s why we’ve built a comprehensive platform for our customers that encompasses all these aspects, providing enterprise-level scalability and robust governance.