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Geniml is a specialized skill designed for bioinformaticians and data scientists working with genomic region data. It enables unsupervised learning of embeddings for BED files, single cells, and metadata, providing a comprehensive toolkit for tasks like similarity searching, clustering, and building consensus peak universes. By integrating sophisticated methods like Region2Vec, BEDspace, and scEmbed, this skill streamlines the transition from raw genomic intervals to actionable machine learning models and downstream analysis within the Claude Code environment.