NobleProg delivers high-quality AI Security training courses in Berlin, the dynamic heart of Germany's tech and innovation sector. Participants benefit from expert-led instruction tailored to the professional needs of the capital's diverse industry landscape. Join our Berlin-based programs to enhance your skills with hands-on learning experiences in a world-class urban environment.
Protect AI systems from evolving threats with hands-on, instructor-led training in AI Security.
These live courses teach how to defend machine learning models, counter adversarial attacks, and build trustworthy, resilient AI systems.
Training is available as online live training via remote desktop or onsite live training in Berlin, featuring interactive exercises and real-world use cases.
Onsite live training can be delivered at your location in Berlin or at a NobleProg corporate training center in Berlin.
Also known as Secure AI, ML Security, or Adversarial Machine Learning.
Our training facilities are located at Brückenstr. 4 in Berlin. Located on the fourth floor of a well-kept office building, our premises offer enough space for successful training courses in the heart of Berlin, within walking distance of the Jannowitzbrücke station.
Directions
The NobleProg training facilities are located in the heart of Berlin's Mitte district, just one underground station from Alexanderplatz, one of the centres of this vibrant city. By public transport you can reach us either by underground line U8 to Jannowitzbrücke station, followed by about 100 meters on foot.
Parking
Cars can be parked in the area along Brückenstr. and the nearby side streets, even if you may have to search for a moment. There is no charge for parking.
Local Amenities
Around the Rosenthaler Platz there are numerous small restaurants and shops where you can eat well and cheaply. There are also some hotels close by if you need accommodation for the training.
Our training facilities are located at Dianastrasse 46 in Potsdam-Babelsberg.
Our spacious training rooms are located directly opposite the Filmstudios Babelsberg and offer optimal training conditions for your needs.
Arrival
The NobleProg training facilities are conveniently located near the Medienstadt Babelsberg railway station,
and the A115 motorway is also easily accessible.
Parking
Parking is available in the surrounding streets around our training rooms.
Local Services
Potsdam offers numerous hotels and restaurants and is easily accessible thanks to its well-developed public transport system.
This advanced ISACA course in Berlin equips professionals to govern and secure AI systems. It covers risk assessment, secure design, and compliance, enabling leaders to align AI security with organizational goals and enhance operational resilience effectively.
This instructor-led, live training in Berlin (online or onsite) is aimed at beginner-level to intermediate-level IT professionals who wish to understand and implement AI TRiSM in their organizations.
By the end of this training, participants will be able to:
Grasp the key concepts and importance of AI trust, risk, and security management.
Identify and mitigate risks associated with AI systems.
Implement security best practices for AI.
Understand regulatory compliance and ethical considerations for AI.
Develop strategies for effective AI governance and management.
This instructor-led training in Berlin covers governance, identity management, and red-teaming for agentic AI systems. Advanced practitioners will design secure deployments, implement least-privilege access, and execute adversarial testing to mitigate real-world threats in production environments.
This instructor-led, live training in Berlin (online or onsite) is aimed at intermediate-level AI and cybersecurity professionals who wish to understand and address the security vulnerabilities specific to AI models and systems, particularly in highly regulated industries such as finance, data governance, and consulting.
By the end of this training, participants will be able to:
Understand the types of adversarial attacks targeting AI systems and methods to defend against them.
Implement model hardening techniques to secure machine learning pipelines.
Ensure data security and integrity in machine learning models.
Navigate regulatory compliance requirements related to AI security.
This instructor-led, live training in Berlin (online or onsite) is aimed at advanced-level security professionals and ML specialists who wish to simulate attacks on AI systems, uncover vulnerabilities, and enhance the robustness of deployed AI models.
By the end of this training, participants will be able to:
Simulate real-world threats to machine learning models.
Generate adversarial examples to test model robustness.
Assess the attack surface of AI APIs and pipelines.
Design red teaming strategies for AI deployment environments.
This instructor-led training in Berlin equips advanced professionals to secure TinyML pipelines on edge devices. You will learn to implement privacy-preserving techniques, harden models against adversarial threats, and apply best practices for secure data handling in constrained environments.
This instructor-led, live training in Berlin (online or onsite) is aimed at intermediate-level engineers and security professionals who wish to secure AI models deployed at the edge against threats such as tampering, data leakage, adversarial inputs, and physical attacks.
By the end of this training, participants will be able to:
Identify and assess security risks in edge AI deployments.
Apply tamper resistance and encrypted inference techniques.
Harden edge-deployed models and secure data pipelines.
Implement threat mitigation strategies specific to embedded and constrained systems.
This instructor-led, live training in Berlin (online or onsite) is aimed at advanced-level professionals who wish to implement and evaluate techniques such as federated learning, secure multiparty computation, homomorphic encryption, and differential privacy in real-world machine learning pipelines.
By the end of this training, participants will be able to:
Understand and compare key privacy-preserving techniques in ML.
Implement federated learning systems using open-source frameworks.
Apply differential privacy for safe data sharing and model training.
Use encryption and secure computation techniques to protect model inputs and outputs.
This instructor-led training in Berlin is designed for public sector IT professionals to master AI risk management and security. Participants will apply frameworks like NIST AI RMF, address cybersecurity threats, and build robust governance plans for secure AI deployment.
This instructor-led, live training in Berlin (online or onsite) is aimed at intermediate-level enterprise leaders who wish to understand how to govern and secure AI systems responsibly and in compliance with emerging global frameworks such as the EU AI Act, GDPR, ISO/IEC 42001, and the U.S. Executive Order on AI.
By the end of this training, participants will be able to:
Understand the legal, ethical, and regulatory risks of using AI across departments.
Interpret and apply major AI governance frameworks (EU AI Act, NIST AI RMF, ISO/IEC 42001).
Establish security, auditing, and oversight policies for AI deployment in the enterprise.
Develop procurement and usage guidelines for third-party and in-house AI systems.
This instructor-led, live training in Berlin (online or onsite) is aimed at intermediate-level to advanced-level AI developers, architects, and product managers who wish to identify and mitigate risks associated with LLM-powered applications, including prompt injection, data leakage, and unfiltered output, while incorporating security controls like input validation, human-in-the-loop oversight, and output guardrails.
By the end of this training, participants will be able to:
Understand the core vulnerabilities of LLM-based systems.
Apply secure design principles to LLM app architecture.
Use tools such as Guardrails AI and LangChain for validation, filtering, and safety.
Integrate techniques like sandboxing, red teaming, and human-in-the-loop review into production-grade pipelines.
This instructor-led, live training in Berlin (online or onsite) is aimed at intermediate-level machine learning and cybersecurity professionals who wish to understand and mitigate emerging threats against AI models, using both conceptual frameworks and hands-on defenses like robust training and differential privacy.
By the end of this training, participants will be able to:
Identify and classify AI-specific threats such as adversarial attacks, inversion, and poisoning.
Use tools like the Adversarial Robustness Toolbox (ART) to simulate attacks and test models.
Apply practical defenses including adversarial training, noise injection, and privacy-preserving techniques.
Design threat-aware model evaluation strategies in production environments.
This instructor-led, live training in Berlin (online or onsite) is aimed at beginner-level IT security, risk, and compliance professionals who wish to understand foundational AI security concepts, threat vectors, and global frameworks such as NIST AI RMF and ISO/IEC 42001.
By the end of this training, participants will be able to:
Understand the unique security risks introduced by AI systems.
Identify threat vectors such as adversarial attacks, data poisoning, and model inversion.
Apply foundational governance models like the NIST AI Risk Management Framework.
Align AI use with emerging standards, compliance guidelines, and ethical principles.
Based on the latest OWASP GenAI Security Project guidance, participants will learn to identify, assess, and mitigate AI-specific threats through hands-on exercises and real-world scenarios.
This course provides a practical introduction to securing modern AI-powered applications, APIs, copilots, and autonomous agents. Participants learn how AI security differs from traditional web security, explore common AI-specific threats such as prompt injection, RAG poisoning, and agent abuse, and understand how to protect AI systems using layered defenses including WAFs, AI gateways, API security, and guardrails. Through hands-on labs and real-world examples, students gain the skills to identify AI attack patterns, secure LLM-based applications, and deploy effective runtime defenses for production environments.
This course teaches software developers how to build AI-powered applications securely by design. Participants learn how to protect chatbots, copilots, RAG pipelines, and AI agents against AI-specific threats such as prompt injection, data poisoning, tool abuse, secret leakage, and insecure model output. The course covers secure prompt design, RAG security, least-privilege access, guardrails, and red-team testing, helping developers build AI features that are secure, reliable, and resilient in real-world environments.
This instructor-led, live training in Berlin (online or onsite) is aimed at security engineers and compliance officers who wish to harden EXO deployments, control model access, and govern AI workloads running entirely on-premise.
This instructor-led, live training in Berlin (online or onsite) is aimed at security and ML engineers who need to identify, test, and defend against attacks on ML models and LLM-powered applications.
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Testimonials (3)
inventory and identifying the different risk exposures within AI
Gary Cook - Cybersecurity and Information Technology Risk Division
Course - Introduction to AI Trust, Risk, and Security Management (AI TRiSM)
I really enjoyed learning about AI attacks and the tools out there to begin practicing and actively using for security testing. I took a lot of knowledge away which I didn't have at the beginning and the course met what I hoped it would be. My favorite part shown from the training was Comet Browser and was amazed at what it could do. Definitely something will be looking into more. Overall it was a great course and enjoyed learning all OWASP GenAI Top 10.
Patrick Collins - Optum
Course - OWASP GenAI Security
The profesional knolage and the way how he presented it before us
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