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Training Leaders Call for AI Oversight as EASA Details Response

Training Leaders Call for AI Oversight as EASA Details Regulatory Response
As artificial intelligence (AI) increasingly transforms aviation training, industry leaders are urging the implementation of stringent oversight measures to preserve safety and maintain trust. These calls come amid growing recognition of AI’s potential benefits and risks, prompting regulatory bodies such as the European Union Aviation Safety Agency (EASA) to outline their approach to managing AI integration within the sector.
Human Control and Decision-Making
A primary concern among training professionals is the imperative to retain human authority in critical decision-making processes. Experts at the recent EATS Heads of Training (HoT) meeting emphasized that AI should serve to augment, rather than replace, the expertise of instructors and evaluators. The consensus underscores that human judgment remains indispensable, warning against an overreliance on AI that could lead to what has been described as “cognitive erosion.” EASA’s emerging AI framework reflects these concerns by mandating that humans remain central to key decisions. The framework introduces a classification system for AI applications based on the degree of human oversight, yet it firmly places ultimate responsibility with the end user, aligning with industry recommendations.
Data Privacy and Security Challenges
Protecting the personal data of trainees has emerged as a critical issue. Training leaders advocate for explicit consent prior to any sharing of training data, alongside rigorous validation of data accuracy, clearly defined limits on data usage, secure storage protocols, and transparent policies—particularly for experimental AI initiatives. While EASA’s current framework addresses AI performance and includes Data Quality Requirements (DQRs) focused on accuracy and data management, it offers limited explicit guidance on data sharing and privacy safeguards. Industry representatives argue that regulatory provisions must be strengthened to address consent and privacy concerns adequately, keeping pace with the evolving risks posed by AI technologies.
Transparency and Accountability in AI Systems
Transparency is deemed essential as AI becomes more deeply embedded in aviation training operations. Training leaders stress the necessity for AI systems to provide clear explanations of their decisions, moving beyond opaque “black box” outputs to deliver actionable feedback for both instructors and trainees. Critical questions include the criteria AI uses in its assessments, whether it is merely suggesting options or making decisions, and how its judgments are balanced against human analysis. Recommendations also include maintaining detailed AI decision logs to ensure traceability and requiring instructors to validate AI-generated content for appropriateness and difficulty levels.
EASA’s regulatory proposal addresses many of these transparency concerns by introducing “operational explainability” requirements. These provisions aim to ensure that AI systems offer understandable and relevant explanations for their outputs, a step regarded as vital for fostering trust and supporting effective learning.
Emerging Challenges and Industry Response
The integration of AI into aviation training introduces new challenges related to governance, compliance, and risk management. Companies operating within regulated markets may encounter heightened scrutiny and increased compliance costs as trust in AI systems becomes a key competitive factor. In response, some industry players are prioritizing transparency and stakeholder engagement in oversight processes to build confidence and maintain their market positions.
Looking Forward
Although EASA’s evolving framework addresses several critical industry concerns, notable gaps remain, particularly regarding data privacy and explicit consent. As AI’s role in aviation training continues to expand, sustained dialogue among regulators, industry leaders, and stakeholders will be essential to ensure that innovation advances without compromising safety, transparency, or accountability.

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