Sarcouncil Journal of Engineering and Computer Sciences

Sarcouncil Journal of Engineering and Computer Sciences

An Open access peer reviewed international Journal
Publication Frequency- Monthly
Publisher Name-SARC Publisher

ISSN Online- 2945-3585
Country of origin-PHILIPPINES
Impact Factor- 3.7
Language- English

Keywords

Editors

Compliance-aware AI: Embedding Regulatory Logic into Machine Learning Pipelines

Keywords: Regulatory compliance, Machine learning governance, Compliance-by-design, AI transparency, Probabilistic decision-making.

Abstract: This article addresses the emerging challenge of ensuring regulatory compliance in artificial intelligence systems. While traditional software relies on explicit rule-based logic to enforce compliance requirements, modern machine learning models operate on probabilistic foundations that introduce novel compliance risks. The article explores methodologies for embedding regulatory logic—including age verification, consent management, and access controls—directly into AI pipelines. Through an examination of pre-processing filters, post-processing safeguards, and runtime governance mechanisms, architectural patterns are presented that can help AI practitioners design systems that maintain compliance even when working with dynamic or black-box models. This framework offers practical guidance for AI product teams operating in highly regulated domains.

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