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Harden AI: Secure Your ML Pipelines · LearnSpace
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Harden AI: Secure Your ML Pipelines

Курс от Coursera
Средний≈ 5.3 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Imagine deploying a powerful machine learning model that performs flawlessly—until a single unpatched container, a poisoned dependency, or a misconfigured cloud service brings it crashing down. In today’s AI-driven world, securing ML systems is no longer optional; it’s essential to maintaining trust, compliance, and resilience. Harden AI: Secure Your ML Pipelines is an intermediate, scenario-driven cybersecurity and AI governance course that immerses learners in the realities of protecting machine learning infrastructure. Through a blend of theory sessions, guided demonstrations, and AI-assisted coach dialogues, participants explore how to harden ML environments, secure CI/CD workflows, and build resilient pipelines that can withstand compromise. Real-world case studies—ranging from exposed Jupyter notebooks to supply chain attacks and model drift—anchor the learning experience in practical relevance. This course is for ML engineers, DevOps professionals, and AI practitioners who want to secure their ML pipelines. It also suits data scientists and developers managing AI systems in cloud or containerised environments. Learners should have basic knowledge of ML workflows, cloud or container security, and general awareness of cyber threats. By the end of the course, learners will have developed a security-by-design mindset, equipped with both the technical skills and ethical awareness to deploy trustworthy, compliant, and resilient AI systems in real-world environments.

Навыки, которые вы освоите

CI/CDData IntegrityAI SecurityCyber GovernanceAI PersonalizationSecurity ControlsVulnerability AssessmentsInfrastructure SecurityHardeningIdentity and Access ManagementCompliance ManagementAnomaly DetectionResponsible AIDevSecOpsVulnerability ScanningEngineeringResilienceContinuous MonitoringMLOps (Machine Learning Operations)Containerization

Программа курса

3 модулей · 24 учебных материалов

01Infrastructure Hardening for ML9 материалов
Securing the Exposed ML NotebookDIALOGUEWelcome to the Course: Course OverviewЧтениеHarden AI: Secure Your ML PipelinesВидеоHardening ML InfrastructureВидео

Учитесь у экспертов

Hanniel Jafaru

Author | Cybersecurity & AI Governance Professional | Tech Career & Business Coach

Starweaver

Global Leaders in Professional & Technology Education

Harden AI: Secure Your ML Pipelines
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Новые знания — в удобное для вас время.

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Обучение откроется на Coursera
в новой вкладке

Обучение на Coursera

≈ 5.3 ч

3 модулей

Язык: Английский

Субтитры: Арабский, Французский, Итальянский, Корейский, Индонезийский, Испанский, Японский

Часть программы вашего университета
Container and Kubernetes SecurityВидео
Machine Learning System Security: Risks & Best PracticesЧтение
Image Scan for ML Services Using TrivyВидео
Interpreting Trivy Scan Results and Next StepsВидео
Hands-On-Learning: Scanning the Containerized ML Service Взаимная проверка
02Securing ML CI/CD Pipelines6 материалов
The Compromised DependencyDIALOGUEThreats to ML CI/CD WorkflowsВидеоSecure Your Pipeline: Top 10 CI/CD Security Best PracticesЧтениеSecure Workflow PracticesВидеоSecuring an ML CI/CD WorkflowВидеоHands-On-Learning: Scanning Dependencies in the ML PipelineВзаимная проверка
03Building Resilient ML Pipelines9 материалов
The Biased Model DilemmaDIALOGUECompromise Vectors in MLВидеоPipeline Resilience StrategiesВидеоBuilding Resilient AI Systems In The Cloud: Lessons From Real-World DeploymentsЧтениеModel Rollback in an ML PipelineВидеоHands-On-Learning: Rolling Back to Stability Взаимная проверкаHarden AI: Secure Your ML PipelinesЗаданиеProject: Design and Secure an End-to-End ML PipelineВзаимная проверкаCourse Wrap-UpВидео