SFR-Embedding-2_R
by Salesforce
SFR-Embedding-2_R is a state-of-the-art text embedding model developed by Salesforce Research. It is designed to convert text into high-dimensional vector representations (embeddings) that capture semantic meaning, enabling advanced natural language processing (NLP) tasks such as semantic search, clustering, and retrieval-augmented generation (RAG). The model is optimized for performance, achieving high accuracy on benchmarks like the Massive Text Embedding Benchmark (MTEB), where it has demonstrated competitive results. SFR-Embedding-2_R is part of Salesforce's broader efforts to advance AI research and provide tools for enterprise and developer use cases.
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Weighted across four pillars · updated May 4, 2026
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