PUBLISHER: IoT Analytics GmbH | PRODUCT CODE: 1540311
PUBLISHER: IoT Analytics GmbH | PRODUCT CODE: 1540311
A 263-page report on the enterprise Generative AI market, incl. market sizing & forecast, competitive landscape, end user adoption, trends, challenges, and more.
The "Generative AI Market Report 2025-2030" is part of IoT Analytics' ongoing coverage of enterprise technology markets. The information presented in this report is based on the results of secondary research and qualitative research, i.e., interviews with experts with experts in the field. The main purpose of this document is to help our readers understand the current Generative AI (GenAI) landscape and potential use cases.
GenAI is a deep-learning technique based on variational autoencoders, generative adversarial networks, and transformer-based models.
The market segment for data center GPUs refers to specialized graphics processing units designed to handle the extensive computational demands of modern data centers. These GPUs are engineered to accelerate a variety of complex workloads, including high-performance computing, DL, ML, and large-scale graphics processing tasks. The market does not include spending on CPUs, consumer-grade GPUs, or application-specific integrated circuits (ASICs). It includes GPU systems such as specialized GPU server racks. The market only includes external spending but not spending on developing own chips e.g., Google's TPUs or AWS' Trainium or Inferentium.
This market segment includes both foundational models and model management platforms.
GenAI services represent a specialized market segment dedicated to consulting, integration, and implementation support for organizations aiming to integrate GenAI capabilities. These services are tailored to help businesses conceptualize, develop, and execute strategies that leverage GenAI technologies for enhanced innovation, efficiency, and value creation. Services includes consulting, integration, and managed services.
The GenAI tech stack includes 5 building blocks:
The report includes a structured repository of 530 generative AI projects.*
Column name | Description |
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Company | Name of the company that implemented the project. |
Industry (ISIC classification) | Industry classification (ISIC code) of the customer |
Project description | A brief description of the project |
Country | Country that the project took place in |
Region | Region that the project took place in |
Vendor | Name of the vendor that has published the case study/project on their website |
Year | Year that the project was implemented |
Link | Unique identifier of each case study/project |
Key department and activities that are improved by each project | Each project is grouped into one or more of the follogin departments: Sales, Marketing, Operations/mfg, Maintenance/field service, Finance and account, Human resources, IT/technology, Research and development, Customer service/support, Legal and compliance, Procurement, Logistics and supply chain, Corporate strategy/business development, Facility management. A project can touch mulitple departments. Each department is broken down into key activities. |
A selection of companies mentioned in the report.
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