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Security and Privacy Controls in Ingestion Pipelines (PII masking, Encryption, Access Governance)

Aug 2026 · International journal of computer information systems and industrial management applications · 0 citations

Abstract

The use of high-throughput data ingestion pipelines that can constantly amass and process data collected by heterogeneous sources into a centralized or distributed data storage system is increasingly becoming the cornerstone of modern enterprise data ecosystems. Since these pipelines handle delicate personally identifiable information (PII) and financial data, healthcare data, and proprietary telemetry, it has become a critical concern of organizations that have to work within high regulatory standards, including GDPR, HIPAA, and CCPA, to guarantee high-quality security and privacy controls through all ingestion phases. Formal comparison with the Apache Kafka and Apache Spark-based pipeline deployments shows that the suggested framework yields an overhead of the throughput no more than 7.3% and offers extensive coverage of PII protection and role-based access control. These findings suggest that appropriately designed security controls can be integrated into production ingestion pipelines without degrading the performance of those pipelines materially, disproving the long-standing belief that there is an inherent trade-off between the security of data and the operation of pipelines.

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