The constraint is the opportunity: Discovering where AI agents matter to business

Lars Malmqvist · IET conference proceedings. · 2025

The rapid advancement of artificial intelligence (AI), particularly large language models (LLMs) and generative AI, presents a significant opportunity for businesses to enhance performance. However, the heterogeneity of AI capabilities, described by the “Jagged Frontier,” and the complexities of organizational processes necessitate a nuanced approach to AI deployment. This paper argues that the Theory of Constraints (TOC) provides a valuable lens for identifying strategic opportunities for AI agents to drive business performance. We contend that while LLMs can enhance individual productivity, substantial improvements in organizational throughput are contingent upon the deployment of AI agents to relieve specific labor constraints within core processes. By focusing on the most impactful constraints, businesses can strategically leverage AI to achieve meaningful gains, rather than pursuing diffuse productivity enhancements that may not translate to overall system improvement. This paper explores the relevance of TOC in the context of AI, compares it to other constraint-based methodologies, and discusses the strategic and managerial implications of adopting a constraint-focused approach to AI implementation.

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