Secure Your Enterprise AI Systems Before Attackers Do
Large language models are revolutionizing enterprise workflows, but they introduce an entirely new attack surface. LLM Security Engineering is the definitive, hands-on playbook for security engineers and AI developers looking to safeguard production AI applications.
Go beyond abstract safety theory and master the concrete, tactical defenses required to protect against prompt injection, data exfiltration, supply chain poisoning, and autonomous agent exploits. This comprehensive guide maps directly to the latest OWASP GenAI Top-10 and Agentic AI Top-10 frameworks, providing you with the exact strategies needed for enterprise-grade compliance.
What You Will LearnWhether you are securing a single customer-facing chatbot or orchestrating a complex fleet of autonomous AI agents, this book provides the adversarial mindset and engineering controls you need. Stop reacting to emerging threats and start engineering secure-by-design LLM applications today.
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Librería: Grand Eagle Retail, Bensenville, IL, Estados Unidos de America
Paperback. Condición: new. Paperback. Secure Your Enterprise AI Systems Before Attackers DoLarge language models are revolutionizing enterprise workflows, but they introduce an entirely new attack surface. LLM Security Engineering is the definitive, hands-on playbook for security engineers and AI developers looking to safeguard production AI applications.Go beyond abstract safety theory and master the concrete, tactical defenses required to protect against prompt injection, data exfiltration, supply chain poisoning, and autonomous agent exploits. This comprehensive guide maps directly to the latest OWASP GenAI Top-10 and Agentic AI Top-10 frameworks, providing you with the exact strategies needed for enterprise-grade compliance.What You Will LearnMaster Advanced Red Teaming: Execute structured attacks against LLM systems using industry-standard tools like promptfoo and Garak.Defeat Prompt Injection: Detect and block direct and indirect prompt injection across the application, retrieval (RAG), and infrastructure layers.Harden Autonomous Agents: Secure tool-use chains, multi-agent orchestrations, and mitigate downstream injection vulnerabilities.Protect Intellectual Property: Defend against model extraction attacks and secure your AI supply chain, including models and fine-tuning datasets.Build an Enterprise Security Program: Design an AI security lifecycle from risk assessment and continuous monitoring to specialized incident response playbooks.Whether you are securing a single customer-facing chatbot or orchestrating a complex fleet of autonomous AI agents, this book provides the adversarial mindset and engineering controls you need. Stop reacting to emerging threats and start engineering secure-by-design LLM applications today. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability. Nº de ref. del artículo: 9798198169647
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PAP. Condición: New. New Book. Shipped from UK. Established seller since 2000. Nº de ref. del artículo: L2-9798198169647
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Librería: CitiRetail, Stevenage, Reino Unido
Paperback. Condición: new. Paperback. Secure Your Enterprise AI Systems Before Attackers DoLarge language models are revolutionizing enterprise workflows, but they introduce an entirely new attack surface. LLM Security Engineering is the definitive, hands-on playbook for security engineers and AI developers looking to safeguard production AI applications.Go beyond abstract safety theory and master the concrete, tactical defenses required to protect against prompt injection, data exfiltration, supply chain poisoning, and autonomous agent exploits. This comprehensive guide maps directly to the latest OWASP GenAI Top-10 and Agentic AI Top-10 frameworks, providing you with the exact strategies needed for enterprise-grade compliance.What You Will LearnMaster Advanced Red Teaming: Execute structured attacks against LLM systems using industry-standard tools like promptfoo and Garak.Defeat Prompt Injection: Detect and block direct and indirect prompt injection across the application, retrieval (RAG), and infrastructure layers.Harden Autonomous Agents: Secure tool-use chains, multi-agent orchestrations, and mitigate downstream injection vulnerabilities.Protect Intellectual Property: Defend against model extraction attacks and secure your AI supply chain, including models and fine-tuning datasets.Build an Enterprise Security Program: Design an AI security lifecycle from risk assessment and continuous monitoring to specialized incident response playbooks.Whether you are securing a single customer-facing chatbot or orchestrating a complex fleet of autonomous AI agents, this book provides the adversarial mindset and engineering controls you need. Stop reacting to emerging threats and start engineering secure-by-design LLM applications today. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability. Nº de ref. del artículo: 9798198169647
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Librería: AHA-BUCH GmbH, Einbeck, Alemania
Taschenbuch. Condición: Neu. Neuware - Secure Your Enterprise AI Systems Before Attackers DoLarge language models are revolutionizing enterprise workflows, but they introduce an entirely new attack surface. LLM Security Engineering is the definitive, hands-on playbook for security engineers and AI developers looking to safeguard production AI applications.Go beyond abstract safety theory and master the concrete, tactical defenses required to protect against prompt injection, data exfiltration, supply chain poisoning, and autonomous agent exploits. This comprehensive guide maps directly to the latest OWASP GenAI Top-10 and Agentic AI Top-10 frameworks, providing you with the exact strategies needed for enterprise-grade compliance.What You Will Learn- Master Advanced Red Teaming: Execute structured attacks against LLM systems using industry-standard tools like promptfoo and Garak.- Defeat Prompt Injection: Detect and block direct and indirect prompt injection across the application, retrieval (RAG), and infrastructure layers.- Harden Autonomous Agents: Secure tool-use chains, multi-agent orchestrations, and mitigate downstream injection vulnerabilities.- Protect Intellectual Property: Defend against model extraction attacks and secure your AI supply chain, including models and fine-tuning datasets.- Build an Enterprise Security Program: Design an AI security lifecycle from risk assessment and continuous monitoring to specialized incident response playbooks.Whether you are securing a single customer-facing chatbot or orchestrating a complex fleet of autonomous AI agents, this book provides the adversarial mindset and engineering controls you need. Stop reacting to emerging threats and start engineering secure-by-design LLM applications today. Nº de ref. del artículo: 9798198169647
Cantidad disponible: 2 disponibles