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This skill equips Claude with specialized knowledge of the scvi-tools framework, the industry standard for applying deep learning to single-cell genomics. It provides comprehensive guidance for performing unsupervised and semi-supervised data integration, multi-modal CITE-seq and multiome analysis, ATAC-seq peak analysis, and spatial transcriptomics deconvolution. By leveraging pre-built CLI scripts and Python utilities, users can efficiently process raw counts into meaningful latent representations, perform batch correction, and conduct differential expression analysis within a robust, reproducible workflow.