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However, with these systems developing and becoming more complex, they have transformed into black boxes that are difficult to interpret and explain. Therefore, urged by the wide media coverage of negative incidents involving AI, many scholars and practitioners have called for AI systems to be transparent and explainable. In this study, we examine transparency in AI-augmented settings, such as in workplaces, and perform a novel analysis of the different jobs and tasks that can be augmented by AI. Using more than 1000 job descriptions and 20,000 tasks from the O*NET database, we analyze the level of transparency required to augment these tasks by AI. Our findings indicate that the transparency requirements differ depending on the augmentation score and perceived risk category of each task. 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