ModelOps Market

Global ModelOps Market Size, Share & Trends Analysis Report By Offering (Platforms, and Services), By Model, By Deployment (Cloud, and On-Premise), By Vertical, By Application, By Regional Outlook and Forecast, 2024 - 2031

Report Id: KBV-26833 Publication Date: February-2025 Number of Pages: 377
2023
USD 4.05 Billion
2031
USD 58.07 Billion
CAGR
40.2%
Historical Data
2020 to 2022

“Global ModelOps Market to reach a market value of USD 58.07 Billion by 2031 growing at a CAGR of 40.2%”

Analysis of Market Size & Trends

The Global ModelOps Market size is expected to reach $58.07 billion by 2031, rising at a market growth of 40.2% CAGR during the forecast period.

The North America segment garnered 36% revenue share in the market in 2023. This prominence is attributed to the region's advanced technological infrastructure, substantial investments in artificial intelligence (AI) and machine learning (ML), and the presence of numerous leading technology firms. Industries such as finance, healthcare, and retail in North America are increasingly adopting these solutions to streamline AI model deployment and management, ensuring compliance with stringent regulatory standards and enhancing operational efficiency.

ModelOps Market Size - Global Opportunities and Trends Analysis Report 2020-2031

Companies leverage AI and ML to optimize operations, streamline workflows, and uncover insights that drive smarter decision-making. For example, in the financial sector, artificial intelligence models are employed for the purposes of fraud detection and risk assessment. Conversely, in the retail industry, these models facilitate personalized recommendations and optimize inventory management. Hence, this combination of technological capability and operational efficiency is driving the rapid adoption of ModelOps.

Additionally, Operational efficiency has become a top priority for organizations striving to remain agile and competitive in today’s fast-paced business environment. A significant challenge in attaining this efficacy resides in the management of the complexities associated with the deployment and maintenance of artificial intelligence and machine learning models within production environments. Thus, these developments aid in the expansion of the market.

However, The dearth of qualified data scientists and machine learning engineers means that organizations often lack the necessary expertise to develop robust machine learning models. This limitation leads to longer development cycles, as existing teams may be overburdened or lack specific skills required for certain projects. Moreover, without adequate ModelOps experts, deploying these models into production environments becomes challenging. Hence, this substantial lack of talent may hamper the expansion of the market.

ModelOps Market Share 2023

The leading players in the market are competing with diverse innovative offerings to remain competitive in the market. The above illustration shows the percentage of revenue shared by some of the leading companies in the market. The leading players of the market are adopting various strategies in order to cater demand coming from the different industries. The key developmental strategies in the market are Acquisitions, and Partnerships & Collaborations.

Driving and Restraining Factors
ModelOps Market
  • Increased Adoption Of AI And Machine Learning
  • Growing Focus On Operational Efficiency
  • Exponential Growth Of Data
  • Lack Of Skilled Professionals
  • Integration Challenges With Existing IT Infrastructure
  • Growing Importance Of Governance And Compliance
  • Advancements In Automation And AI Lifecycle Management
  • High Initial Investment Costs
  • Data Security And Compliance Issues

Offering Outlook

Based on offering, the market is bifurcated into platforms and services. The services segment procured 34% revenue share in the market in 2023. The increasing complexity of AI models necessitates specialized services to manage and optimize these models effectively. Organizations focus on data-driven decision-making, which requires customized solutions tailored to specific business needs.

Model Outlook

By model, the market is divided into ML models, graph-based models, rule & heuristic models, linguistic models, agent-based models, and others. The graph-based models segment garnered 16% revenue share in the market in 2023. Social media, telecommunications, and cybersecurity use graph-based models to detect patterns, identify anomalies, and understand intricate network structures. The rising need for advanced analytics to navigate complex data relationships drives the demand for these solutions tailored to efficiently manage and operationalize graph-based models.

Deployment Outlook

On the basis of deployment, the market is classified into cloud and on-premise. The on-premise segment recorded 38% revenue share in the market in 2023. Industries such as finance, healthcare, and government, which handle sensitive and confidential information, often prefer on-premises ModelOps solutions to ensure adherence to stringent regulatory requirements and mitigate data breach risks.

Vertical Outlook

On the basis of vertical, the market is classified into BFSI, retail & e-commerce, healthcare & life sciences, manufacturing, IT & telecommunications, energy & utilities, transportation & logistics, and others. The healthcare & life sciences segment witnessed 15% revenue share in the market in 2023. The sector is increasingly adopting ModelOps to advance personalized medicine, improve diagnostic accuracy, and streamline administrative processes. The integration of AI models facilitates the analysis of complex medical data, leading to better patient outcomes and optimized treatment plans.

ModelOps Market Share and Industry Analysis Report 2023

Application Outlook

Based on application, the market is segmented into continuous integration/continuous deployment, batch scoring, governance, risk & compliance, parallelization & distributed computing, monitoring & alerting, dashboard & reporting, model lifecycle management, and others. The batch scoring segment recorded 15% revenue share in the market in 2023. Batch scoring involves processing large volumes of data to generate predictions or insights at scheduled intervals. Industries such as finance and retail utilize batch scoring to analyze historical data for risk assessment, customer segmentation, and inventory management.

Free Valuable Insights: Global ModelOps Market size to reach USD 58.07 Billion by 2031

Regional Outlook

Region-wise, the market is analyzed across North America, Europe, Asia Pacific, and LAMEA. The Europe segment procured 31% revenue share in the market in 2023. This market in Europe is significantly influenced by the region's robust commitment to data privacy and regulatory compliance, as evidenced by frameworks such as the General Data Protection Regulation (GDPR). Businesses in a variety of industries, such as manufacturing, healthcare, and finance, are investing in these solutions to ensure that their AI models adhere to these strict guidelines.

ModelOps Market Report Coverage
Report Attribute Details
Market size value in 2023 USD 4.05 Billion
Market size forecast in 2031 USD 58.07 Billion
Base Year 2023
Historical Period 2020 to 2022
Forecast Period 2024 to 2031
Revenue Growth Rate CAGR of 40.2% from 2024 to 2031
Number of Pages 377
Number of Tables 620
Report coverage Market Trends, Revenue Estimation and Forecast, Segmentation Analysis, Regional and Country Breakdown, Market Share Analysis, Porter’s 5 Forces Analysis, Company Profiling, Companies Strategic Developments, SWOT Analysis, Winning Imperatives
Segments covered Offering, Model, Deployment, Vertical, Application, Region
Country scope
  • North America (US, Canada, Mexico, and Rest of North America)
  • Europe (Germany, UK, France, Russia, Spain, Italy, and Rest of Europe)
  • Asia Pacific (Japan, China, India, South Korea, Australia, Malaysia, and Rest of Asia Pacific)
  • LAMEA (Brazil, Argentina, UAE, Saudi Arabia, South Africa, Nigeria, and Rest of LAMEA)
Companies Included

Google LLC (Alphabet Inc.), Hewlett Packard Enterprise Company, IBM Corporation, Microsoft Corporation, Amazon Web Services, Inc. (Amazon.com, Inc.), H2O.ai, Inc., Cloudera, Inc., SAS Institute Inc., DataRobot, Inc., and Domino Data Lab, Inc.

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Recent Strategies Deployed in the Market

  • Jan-2025: IBM and e& have formed a strategic partnership to launch an end-to-end AI governance platform. This solution utilizes IBM's watsonx.governance platform, aiming to strengthen e&'s AI governance framework through automated risk management, compliance monitoring, and real-time performance analysis. IBM Consulting will assist e& in implementing the framework, accelerating its development with persona mapping, market research, and architecture patterns.
  • Oct-2024: AWS and Box, a leading cloud-based Intelligent Content Management (ICM) platform, have expanded their strategic partnership to bring advanced generative AI models to enterprise content. Box now integrates Amazon Bedrock, offering foundation models like Anthropic's Claude and Amazon Titan for custom AI applications. Customers can leverage their data in Box’s Intelligent Content Cloud for secure, scalable AI use cases, unlocking insights, content generation, and workflow automation across industries. The integration with Amazon Q Business further empowers businesses to apply generative AI while maintaining security and privacy.
  • Jul-2024: DataRobot, Inc. partnered with Teradata, a leading provider of data and analytics solutions, to integrate its AI Platform with Teradata VantageCloud and ClearScape Analytics. This integration enables enterprises to scale DataRobot’s AI models within VantageCloud, offering enhanced flexibility, accountability, and security in deploying models. By leveraging ClearScape Analytics’ BYOM capability, users can now operationalize AI models at scale while optimizing costs, empowering businesses to accelerate their AI journey and unlock the full potential of their data.
  • Dec-2023: Google LLC launched its Gemini AI model, introducing multimodal capabilities to enhance its services across text, images, and audio. Gemini outperforms GPT-4 in most benchmarks, especially in coding, and will power products like Google Bard. Available via Google Cloud’s Vertex AI for enterprise customers, Gemini promises improved efficiency, security, and scalability, marking a significant leap in Google’s AI efforts.
  • Jul-2023: Microsoft and Meta expanded their partnership by supporting the Llama 2 family of large language models (LLMs) on Azure and Windows. This collaboration enables developers to fine-tune and deploy Llama 2 models at scale on Azure, benefiting from powerful tools for training, fine-tuning, and inference. Windows developers also gain the ability to optimize Llama 2 locally using the DirectML execution provider. The collaboration underscores Microsoft’s commitment to offering a robust AI ecosystem and ensuring safety and performance in generative AI development.

List of Key Companies Profiled

  • Google LLC (Alphabet Inc.)
  • Hewlett Packard Enterprise Company
  • IBM Corporation
  • Microsoft Corporation
  • Amazon Web Services, Inc. (Amazon.com, Inc.)
  • H2O.ai, Inc.
  • Cloudera, Inc.
  • SAS Institute Inc.
  • DataRobot, Inc.
  • Domino Data Lab, Inc.

ModelOps Market Report Segmentation

By Offering

  • Platforms
  • Services

By Model

  • ML Models
  • Graph-Based Models
  • Rule & Heuristic Models
  • Linguistic Models
  • Agent-Based Models & Others

By Deployment

  • Cloud
  • On-Premise

By Vertical

  • BFSI
  • Retail & E-Commerce
  • Healthcare & Life Sciences
  • Manufacturing
  • IT & Telecommunications
  • Transportation & Logistics
  • Energy, Utilities & Others

By Application

  • Continuous Integration/ Continuous Deployment
  • Model Lifecycle Management
  • Batch Scoring
  • Governance, Risk & Compliance
  • Monitoring & Alerting
  • Parallelization & Distributed Computing
  • Dashboard & Reporting
  • Other Application

By Geography

  • North America
    • US
    • Canada
    • Mexico
    • Rest of North America
  • Europe
    • Germany
    • UK
    • France
    • Russia
    • Spain
    • Italy
    • Rest of Europe
  • Asia Pacific
    • China
    • Japan
    • India
    • South Korea
    • Australia
    • Malaysia
    • Rest of Asia Pacific
  • LAMEA
    • Brazil
    • Argentina
    • UAE
    • Saudi Arabia
    • South Africa
    • Nigeria
    • Rest of LAMEA
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