AI Security Training Courses courses in United States
Empower your workforce with AcadNXT’s AI security training and courses, built to deliver robust AI protection capabilities and secure, trustworthy intelligent systems.
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About AI Security Training in United States
Secure intelligent systems with AcadNXT’s AI security training and courses designed for modern enterprises. Learn to identify vulnerabilities in AI models, protect data pipelines, and implement robust security measures for machine learning and AI-driven applications. Our programs focus on real-world scenarios, enabling professionals to safeguard AI systems, ensure compliance, and build trustworthy, resilient AI solutions.
AI Security courses in United States
Introduction to AI Cybersecurity• Overview of AI systems and security challenges• Difference between traditional cybersecurity and AI security• AI threat landscape and attacker motivations• Security responsibilities across the AI lifecycleAI Architecture and A...
View more• Cybersecurity and application security professionals
• AI and machine learning engineers
• DevSecOps and platform engineering teams
• Cloud and infrastructure security teams
• Technology leaders responsible for AI security
Participants will receive course materials, slides, reference materials, exercises and access to resources for further learning.
Certification: Participants who successfully complete the training will receive an AcadNXT Certification in AI Cybersecurity Training, validating their expertise in securing AI systems, managing AI-specific threats, and applying cybersecurity best practices to artificial intelligence deployments.
Prerequisites: • Basic understanding of cybersecurity or IT security concepts• Familiarity with artificial intelligence or machine learning fundamentals• Awareness of cloud, APIs, or application architectures• Interest in securing modern AI-driven systems
Foundations of AI Security• Overview of AI systems and attack surfaces• Difference between traditional IT security and AI security• AI threat landscape and risk categories• Security responsibilities across the AI lifecycleAI Architecture and Risk Exposure• Dat...
View more• Cybersecurity and risk management professionals
• AI and machine learning practitioners
• DevSecOps and platform engineering teams
• Compliance, governance, and audit professionals
• Technology leaders overseeing AI initiatives
Participants will receive course materials, slides, reference materials, exercises and access to resources for further learning.
Certification: Participants who successfully complete the training will receive an AcadNXT Certification in AI Security & Risk Fundamentals Training, validating their expertise in understanding AI security threats, risk management practices, governance frameworks, and real-world AI security implementation.
Prerequisites: • Basic understanding of artificial intelligence or machine learning concepts• Familiarity with IT systems, applications, or cloud environments• General awareness of cybersecurity or risk management concepts• Interest in responsible and secure AI adoption
Introduction to OWASP GenAI Security• Overview of OWASP GenAI Security initiative• GenAI threat landscape and risk categories• Difference between traditional app security and GenAI security• Security responsibilities across the AI lifecycleGenAI Architecture a...
View more• Application and cloud security professionals
• AI and machine learning engineers
• DevSecOps and platform security teams
• Security architects and risk managers
• Technology leaders responsible for AI governance
Participants will receive course materials, slides, reference materials, exercises and access to resources for further learning.
Certification: Participants who successfully complete the training will receive an AcadNXT Certification in OWASP GenAI Security Training, validating their expertise in identifying, mitigating, and governing security risks in generative AI systems using OWASP-aligned best practices.
Prerequisites: • Basic understanding of cybersecurity or application security concepts• Familiarity with AI, machine learning, or generative AI systems• Awareness of APIs, web applications, or cloud-based architectures• Interest in secure and responsible AI adoption
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US Classrooms
8 active classrooms