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Hyperautomation and AI: The Next Evolution in Cloud Workload Management

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  • Pradeep Kurra

Abstract

Hyperautomation and artificial intelligence are revolutionizing cloud workload management by transforming static, rule-based automation into dynamic, autonomous systems capable of self-learning and adaptation. This transformation addresses critical challenges in increasingly complex multi-cloud environments where traditional approaches have proven inadequate. Drawing on extensive empirical data from global implementations, hyperautomation demonstrates remarkable improvements across operational domains. By combining machine learning, advanced analytics, and process automation within unified frameworks, organizations achieve significant enhancements in resource utilization, fault detection, and automated remediation. The integration of AI with cloud-native technologies enables predictive scaling, intelligent workload placement, and autonomous incident resolution. Self-healing capabilities dramatically reduce downtime through automated anomaly detection and root cause analysis, while continuous learning mechanisms enable systems to evolve through operational experience. At the edge, AI-driven orchestration optimizes latency-sensitive applications through intelligent workload distribution and bandwidth optimization. In multi-cloud environments, hyperautomation provides unified management that transcends provider boundaries, enabling optimal resource allocation and consistent policy enforcement. The convergence of these capabilities with 5G networks further extends automation possibilities, creating a foundation for distributed intelligence across geographically dispersed resources.

Suggested Citation

  • Pradeep Kurra, 2025. "Hyperautomation and AI: The Next Evolution in Cloud Workload Management," International Journal of Scientific Research in Computer Science, Engineering and Information Technology, International Journal of Scientific Research in Computer Science, Engineering and Information Technology, vol. 11(2), pages 3268-3278, March.
  • Handle: RePEc:jbh:ijsrcs:v11:y2025:i2:id:1372
    DOI: 10.32628/CSEIT25112805
    Note: Article URL: https://ijsrcseit.com/home/article/view/CSEIT25112805
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