Pavlo Kudrynskyi

Work place: Department of Computer Science, State University of Information and Communication Technologies, Kyiv, 03110, Ukraine

E-mail: pasha.kudrinskiy@gmail.com

Website:

Research Interests: Artificial Intelligence

Biography

Pavlo Kudrynskyi, PHD Student, Department of Computer Science, State University of Information and Communication Technologies, Ukraine.
(ORCID ID: https://orcid.org/0009-0008-6314-6150)
Major interests: artificial intelligence, software-defined networking, server and storage technologies, and software engineering. 

Author Articles
Cloud-native AI Pipelines for Continuous Infrastructure Optimization and Anomaly Detection

By Viktor Vyshnivskyi Vadym Mukhin Olha Zinchenko Vitalii Kotelianets Oleksandr Zvenihorodskyi Pavlo Kudrynskyi Oleksandr Vyshnivskyi

DOI: https://doi.org/10.5815/ijcnis.2026.02.01, Pub. Date: 8 Apr. 2026

The article describes a model of cloud-native AI pipelines designed for continuous optimization of computing infrastructure and real-time anomaly detection. The developed model combines modern approaches to observability, machine learning (ML), and auto-scaling   based   on   load forecasting.  The methodology is based on the use of LSTM models, autoencoders, and convolutional neural networks (CNN) integrated into Kubernetes environment with support for Prometheus, Kafka, and Grafana. Load changes are simulated, and the system's response to critical events is evaluated. The results demonstrate a significant improvement in anomaly detection accuracy (up to 93%) and resource efficiency (up to 26% cost reduction compared to traditional approaches). The proposed model can be used in AIOps systems that require a high level of automation and reliability.

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