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Secure AI: Red-Teaming & Safety Filters · LearnSpace
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Secure AI: Red-Teaming & Safety Filters

Курс от Coursera
Средний≈ 4.7 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

As large language models revolutionize business operations, sophisticated attackers exploit AI systems through prompt injection, jailbreaking, and content manipulation—vulnerabilities that traditional security tools cannot detect. This intensive course empowers AI developers, cybersecurity professionals, and IT managers to systematically identify and mitigate LLM-specific threats before deployment. Master red-teaming methodologies using industry-standard tools like PyRIT, NVIDIA Garak, and Promptfoo to uncover hidden vulnerabilities through adversarial testing. Learn to design and implement multi-layered content-safety filters that block sophisticated bypass attempts while maintaining system functionality. Through hands-on labs, you'll establish resilience baselines, implement continuous monitoring systems, and create adaptive defenses that strengthen over time. This course is designed for AI engineers, security professionals, data scientists, and developers interested in ensuring the safety and robustness of AI models. It’s also ideal for technology leaders seeking to implement secure, responsible AI frameworks within their organizations. Learners should have a basic understanding of machine learning, AI model architecture, and programming concepts. No prior experience with AI red-teaming or safety systems is required. By end of this course, you'll confidently conduct professional AI security assessments, deploy robust safety mechanisms, and protect LLM applications from evolving attack vectors in production environments.

Навыки, которые вы освоите

AI SecurityContinuous MonitoringSecurity TestingAI PersonalizationSystem ImplementationLLM ApplicationVulnerability AssessmentsLarge Language ModelingSecurity StrategyCyber Security AssessmentVulnerability ScanningExploitation techniquesThreat ModelingResponsible AISecurity ControlsPrompt Engineering

Программа курса

3 модулей · 23 учебных материалов

01Red-Teaming Scenarios for LLM Vulnerabilities8 материалов
The Hidden Risks in Your AI Code DIALOGUEWelcome to the Course: Course OverviewЧтениеWelcome to Secure AI Red-Teaming & Safety FiltersВидеоUnderstanding AI Attack Vectors and Vulnerability CategoriesВидео

Учитесь у экспертов

Brian Newman

Founder & CEO | AI-Driven Consulting LLC

Starweaver

Global Leaders in Professional & Technology Education

Secure AI: Red-Teaming & Safety Filters
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Обучение откроется на Coursera
в новой вкладке

Обучение на Coursera

≈ 4.7 ч

3 модулей

Язык: Английский

Часть программы вашего университета
Designing Effective Red-Teaming ScenariosВидео
Hands-On Vulnerability Discovery with Automated ToolsВидео
Hands-On-Learning: Red-Team Assessment of ChatAssist Customer Service BotВзаимная проверка
LLM Red Teaming Guide (Open Source): Systematically Testing Large Language Models for VulnerabilitiesЧтение
02Content-Safety Filters: Implementation and Testing6 материалов
When Safety Filters FailDIALOGUEMulti-Layered Content-Safety Filter ArchitectureВидеоThe Landscape of LLM Guardrails: Intervention Levels and TechniquesЧтениеImplementing and Configuring Safety Filters for ProductionВидеоTesting Filter Effectiveness Against Bypass AttemptsВидеоHands-On-Learning: Safety Filter Implementation for SecureChat Enterprise BotВзаимная проверка
03Testing LLM Resilience and Improving AI Robustness9 материалов
When Perfect Systems FailDIALOGUEEstablishing Baseline Security Metrics and Resilience BenchmarksВидеоContinuous Testing and Automated Vulnerability AssessmentВидео10 LLM Security Tools to Know in 2025ЧтениеSystematic Security Improvement and Adaptive HardeningВидеоHands-On-Learning: Resilience Assessment and Continuous Hardening of DataSecure AI AssistantВзаимная проверкаCourse Wrap-UpВидеоProject: SecureBank AI Chatbot Security Audit & Implementation Взаимная проверкаSecure AI: Red-Teaming & Safety FiltersЗадание