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◆ International Journal of Innovative Science and Research Technology (IJISRT)2026-07-31· Enterprise systems engineering

UMA: A Unified Multi-Agent Framework for Enterprise AI Systems from SaaS to Agent-as-a-Service

Umamaheswara Rao Kukkala

一句话结论 · In one sentence

The paper introduces UMA, a Unified Multi-Agent Framework for enterprise AI systems, designed to support the complete lifecycle of agentic systems, including deployment, orchestration, execution, monitoring, and return-on-investment (ROI) realization. The proposed framework integrates multi-agent coordination, tool orchestration, memory management, and adaptive decision-making within a layered architecture that enables scalable and efficient enterprise operation. Through an analysis of enterprise use cases and real-world system implementations, it is demonstrated that agent-based systems can autonomously execute complex tasks, reduce human workload, and improve operational efficiency across business functions.

原始摘要(英文原文)· Original abstract
The rapid advancement of artificial intelligence is driving a fundamental transformation in enterprise computing, shifting from traditional software-as-a-service (SaaS) models to agent-as-a-service (AaaS) paradigms powered by autonomous, goal-driven systems. Although large language models (LLMs) have significantly enhanced reasoning and content generation capabilities, their effective adoption in enterprise environments requires scalable orchestration, cost efficiency, and seamless integration with complex workflows. This paper introduces UMA, a Unified Multi-Agent Framework for enterprise AI systems, designed to support the complete lifecycle of agentic systems, including deployment, orchestration, execution, monitoring, and return-on-investment (ROI) realization. The proposed framework integrates multi-agent coordination, tool orchestration, memory management, and adaptive decision-making within a layered architecture that enables scalable and efficient enterprise operation. Through an analysis of enterprise use cases and real-world system implementations, it is demonstrated that agentbased systems can autonomously execute complex tasks, reduce human workload, and improve operational efficiency across business functions. Furthermore, a performance and economic model is presented to quantify the trade-offs between cost, scalability, and autonomy in enterprise AI deployments. The findings highlight the transformative potential of UMA in enabling scalable, efficient, and intelligent enterprise systems, positioning agent-as-a-service as a foundational paradigm for the next generation of enterprise computing.
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UMA: A Unified Multi-Agent Framework for Enterprise AI Systems from SaaS to Agent-as-a-Service — 科研速览 Science Skim