Opportunity Details

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Closing soonGrantTrackPartner

Enhancing the Security, Privacy and Robustness of AI Models and Systems (SecureAI)

European Commission·Multilateral

This Horizon Europe Innovation Action funds work to improve the security, privacy, and robustness of AI models and systems against adversarial manipulation, data poisoning, backdoors, and related attacks. It is intended for legal entities established in Member States and Associated Countries, and it emphasizes trusted, privacy-preserving AI for sensitive uses such as government and enterprise settings. The main outcome is more resilient AI systems with stronger defenses and data-protection mechanisms.

Go / No-Go Memo

This opportunity looks relevant, but the strongest path is likely through a partner or consortium.

Partner

This is a technical AI security research and innovation call, but participation is limited to legal entities established in Member States and Associated Countries and the source does not confirm any realistic IFRC or National Society role. It may be worth tracking for specialized academic or private-sector partners, but Movement relevance is limited and eligibility is restrictive.

Strategic fit

strong

Academic is the strongest profile match at 75/100; relevance is 25/100.

Eligibility risk

moderate

Eligible applicant types include "> General conditions 1. Admissibility Conditions: Proposal page limit and layout described in Annex A and Annex E of the Horizon Europe Work Programme General Annexes. Proposal page limits and layout: described in Part B of the Application Form available in the Submission System. 2. Eligible Countries described in Annex B of the Work Programme General Annexes. A number of non-EU/non-Associated Countries that are not automatically eligible for funding have made specific provisions for making funding available for their participants in Horizon Europe projects. See the information in the Horizon Europe Programme Guide . 3. Other Eligible Conditions In order to achieve the expected outcomes, and safeguard the Union’s strategic assets, interests, autonomy, and others.

Deadline feasibility

moderate

The call closes in 6 days, so proposal capacity is the main constraint.

Funding attractiveness

strong

The tracked ceiling is €21.2M across 5 awards.

Partnership need

moderate

This may be stronger with a Academic lead or co-applicant based on fit scores.

Recommended next action

Ignore

Expected Outcome

Proposals are expected to contribute to one or more of the following:

  • Robust AI models and systems capable of resisting different classes of adversarial manipulation;
  • Innovative defence mechanisms for AI models and systems against new attack families;
  • Methodologies for detecting and mitigating attacks, such as data poisoning, backdoor exploitation and misclassification;
  • AI systems leveraging privacy-enhancing technologies that maintain data confidentiality and regulatory compliance, enabling trusted in-house AI deployments (e.g., for governments and enterprises).

Scope

The increasing reliance on AI in cybersecurity, critical infrastructure, and decision-making processes raises concerns about the security and robustness of AI systems. As AI systems become more prevalent, they are increasingly targeted by adversarial attacks that manipulate inputs, compromise training data, or introduce hidden vulnerabilities. This topic aims to strengthen the resilience of AI systems and algorithms against various threats and attacks, such as enhancing their resilience against adversarial attacks, backdoor injections, and data poisoning. Proposals should develop real-time anomaly detection, mitigation techniques to defend against adversarial attacks and robust federated learning techniques, in synergies with leading efforts on AI transparency, and in compliance with the AI Act. The topic is expected to:

  • Develop robust AI models resistant to adversarial attacks. Exploring techniques to harden AI models and systems against adversarial perturbations, such as adversarial training, robust optimisation, and defence mechanisms that enhance the trustworthiness of AI.
  • Improve detection of manipulated or poisoned training data. Advancing methodologies to identify and mitigate compromised datasets, leveraging techniques such as anomaly detection, provenance tracking, and automated data validation mechanisms.
  • Address the concept of Private AI by developing mechanisms that enable AI models to be trained, deployed and operated in privacy-preserving environments, particularly for sensitive use cases, as for example for government and enterprise settings. This includes ensuring AI computations and data remain within trusted execution boundaries (e.g. on-premise or regulated cloud environments), and leveraging existing and emerging privacy-enhancing techniques such as federated learning, secure aggregation, computing on encrypted data, quantum-safe homomorphic encryption and secure inference in deep learning to safeguard the protection of personal and other sensitive data throughout the AI lifecycle.
SDG 9SDG 16ResearchHORIZON-CL3-2026-02-CS-ECCC-02EU Funding & Tenders

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