Securing AI Using Zero Trust Principles

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Securing AI Using Zero Trust Principles Strategic Guidance for Defending AI Systems in a Rapidly Evolving Threat Landscape Artificial intelligence is reshaping industries, driving innovation in critical sectors such as healthcare, finance, energy, and government. Yet, as organizations integrate AI into business operations, they inherit new… Přejít na celý popis

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Securing AI Using Zero Trust Principles Strategic Guidance for Defending AI Systems in a Rapidly Evolving Threat Landscape Artificial intelligence is reshaping industries, driving innovation in critical sectors such as healthcare, finance, energy, and government. Yet, as organizations integrate AI into business operations, they inherit new risks, many of which conventional security models fail to address. Adversaries are weaponizing AI to automate reconnaissance, bypass defenses, and exploit vulnerable systems. The solution is not more trust, but less. Zero Trust offers a foundational paradigm shift: no identity, device, system, or interaction is inherently trusted. Security must be continuously enforced, context-aware, and resilient by design. This book demonstrates how Zero Trust, when strategically applied to AI environments, enables organizations to secure data pipelines, mitigate emergent threats, and maintain control over evolving digital ecosystems. Key insights include AI Through a Security Lens: Demystifies machine learning, generative AI, and large language models with a focus on operational and business impact. Zero Trust Foundations: Provides a historical and architectural overview of Zero Trust, including Cisco’s Five Zero Trust Categories. Security by Design for AI: Offers guidance on protecting AI development workflows, from data ingestion and model training to inference and deployment. Threat Mitigation Strategies: Addresses adversarial AI, data poisoning, shadow AI, and insider misuse through identity enforcement, segmentation, and telemetry. Strategic Execution: Maps Zero Trust principles to regulatory frameworks including NIST AI RMF, EU AI Act, DORA, and ISO 27001, and provides actionable templates for running successful Zero Trust Segmentation Workshops. Who Should Read This Book: CISOs and security architects building AI-resilient architecturesAI and data leaders embedding AI into enterprise infrastructureRisk, compliance, and governance professionals navigating regulatory changeTechnical teams seeking secure-by-design methodologies for AI initiatives Why This Matters Now: AI systems are expanding faster than most organizations can govern them. The risks, ranging from operational disruption to model corruption, require proactive, architectural defenses. This book bridges the gap between AI innovation and trusted enterprise security. Securing AI Using Zero Trust Principles delivers the strategic playbook for building resilient, trustworthy, and standards-aligned AI systems that can withstand the threats of today and tomorrow.

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Nakladatel
Pearson Education (US)
Rozměr
191 x 230 x 39
jazyk
angličtina
Vazba
měkká vazba
Hmotnost
1150 g
isbn
978-0-13-836341-3
Počet stran
704
datum vydání
19.06.2026
ean
9780138363413

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