Artificial Intelligence in Managerial Decision-Making for Sustainable Business Models: A Systematic Literature Review
Искусственный интеллект в управленческом принятии решений для устойчивых бизнес-моделей: систематический обзор литературы
2026-02-27
SCID: 54.1/wn4jsn9b
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AI-supported decision-makingEnvironmental, Social, and Governance (ESG)sustainability monitoringsustainable business modelssystematic literature review
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Abstract (AI)
Managerial decision-making is a core component of business management and plays a particularly critical role in Sustainable Business Models (SBMs), where it supports long-term competitiveness, adaptability, and positive environmental and social impact. SBMs are inherently complex, dynamic, and data-intensive, requiring advanced analytical capabilities to continuously monitor and optimize sustainability performance across Environmental, Social, and Governance (ESG) dimensions. Artificial Intelligence (AI) introduces new technological opportunities that fundamentally transform managerial decision-making by enabling advanced modeling, simulation, and the analysis of incomplete and heterogeneous data. The purpose of this research is to systematically analyze and synthesize existing AI-supported decision-making approaches used in sustainable business models, with a focus on how these methods transform traditional managerial decision-making frameworks through the integration of Environmental, Social, and Governance (ESG) criteria, and to assess the key benefits, limitations, and implementation conditions of AI-supported decision systems for achieving long-term organizational sustainability. Using a systematic literature review and comparative synthesis of recent theoretical and empirical studies, the research maps key AI-based decision-making approaches applied in sustainable business models and compares their managerial relevance across ESG dimensions. The results provide a structured overview of how different AI techniques contribute to sustainability monitoring, resource optimization, and risk assessment, while also outlining critical organizational, governance, and ethical constraints affecting their practical deployment.
Key Findings
1
AI supports analysis of incomplete and heterogeneous data through advanced modeling and simulation, addressing the complexity and dynamism of sustainable business models.
2
AI techniques enable sustainability monitoring, resource optimization, and risk assessment within sustainable business models.
3
AI-supported decision-making can transform traditional managerial frameworks by integrating ESG criteria into sustainability-oriented business decisions.
4
Practical deployment is constrained by organizational, governance, and ethical conditions that affect the effectiveness of AI-supported decision systems.
5
The review maps and comparatively synthesizes AI-based decision-making approaches across Environmental, Social, and Governance dimensions.
Research Object
AI-supported managerial decision-making in Sustainable Business Models (SBMs)
Research Subject
the transformation, ESG integration, benefits, limitations, and implementation conditions of AI-supported decision-making for long-term organizational sustainability
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2026-02-27
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