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March 14, 2026PLoS ONE3 citationsOpen Access

AI adoption in E-commerce enterprises: Insights into current practices and future directions from an interview study

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TZTong ZhuMRMohd Zaidi Abd Rozan

Key Points

  • This research aims to explore current practices and future directions of AI adoption in e-commerce enterprises.
  • Conducted semi-structured interviews with diverse e-commerce businesses
  • Utilized the TOE and TAM frameworks for analysis
  • Focused on organizations in Anhui Province, China
  • AI applications span the entire e-commerce chain, including marketing and customer service
  • Small enterprises face challenges in technical capabilities and customization
  • Human collaboration remains integral to AI processes
  • Organizational skill levels and employee training are crucial for AI adoption
  • AI deployment varies significantly across different organizational contexts

Abstract

With the accelerated integration of artificial intelligence (AI) technology in digital commerce, e-commerce businesses are showing a diversified trend in its application across processes such as marketing, operations, and customer services. This article, based on the TOE (Technology-Organization-Environment) model and the TAM (Technology Acceptance Model) framework, employs a multi-case qualitative interview approach to conduct semi-structured interviews with different types of e-commerce enterprises in Anhui Province, China. It explores their practical implementation paths, feedback on effects, and future plans regarding AI technology adoption. The research findings are as follows: First, AI applications have covered the entire chain of e-commerce operations, including content generation, advertising placement, data analysis, customer service management, and logistics scheduling; however, small and micro enterprises still face significant limitations in technical depth and customization capabilities. Second, while the effects of AI applications are emerging, most processes continue to rely heavily on human collaboration and supervision, resulting in a human-machine collaboration model of “AI pre-processing + human fine-tuning.” Third, the organizational capabilities of enterprises and the AI literacy of employees are key to adoption, while the external policy environment has yet to provide effective guidance. Fourth, enterprises exhibit a stratified integration pattern in AI deployment, ranging from ‘platform-bound’ to ‘tool-augmented’ to ‘self-developed’ models, reflecting significant dynamic variations across different organizational contexts. This study also provides a new theoretical perspective and empirical evidence for understanding the technology adoption logic and digital transformation practices in the AI-driven e-commerce industry.

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Cite This Study

Zhu et al. (2026) studied this question.

synapsesocial.com/papers/69b4fbb1b39f7826a300c0d9https://doi.org/10.1371/journal.pone.0336416
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