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metadata
pipeline_tag: feature-extraction
tags:
  - gguf
  - embedding
  - eurobert
  - llama-cpp
  - jina-embeddings-v5
language:
  - multilingual
base_model: jinaai/jina-embeddings-v5-text-nano
base_model_relation: quantized
inference: false
license: cc-by-nc-4.0
library_name: llama.cpp

jina-embeddings-v5-text-nano-clustering-GGUF

GGUF quantizations of jina-embeddings-v5-text-nano-clustering using llama.cpp. A 239M parameter multilingual embedding model quantized for efficient inference.

Elastic Inference Service | ArXiv | Blog

We highly recommend to first read this blog post for more technical details and customized llama.cpp build.

Overview

jina-embeddings-v5-text Architecture

jina-embeddings-v5-text-nano-clustering is a task-specific embedding model for clustering, part of the jina-embeddings-v5-text model family.

Feature Value
Parameters 239M
Task clustering
Embedding Dimension 768
Matryoshka Dimensions 32, 64, 128, 256, 512, 768
Pooling Strategy Last-token pooling
Base Model jina-embeddings-v5-text-nano

MMTEB Multilingual Benchmark

MTEB English Benchmark

Retrieval Benchmark Results

Usage with llama.cpp

via Elastic Inference Service

The fastest way to use v5-text in production. Elastic Inference Service (EIS) provides managed embedding inference with built-in scaling, so you can generate embeddings directly within your Elastic deployment.

PUT _inference/text_embedding/jina-v5
{
  "service": "elastic",
  "service_settings": {
    "model_id": "jina-embeddings-v5-text-nano"
  }
}

See the Elastic Inference Service documentation for setup details.

# Build llama.cpp (upstream)
git clone https://github.com/ggml-org/llama.cpp
cd llama.cpp && cmake -B build && cmake --build build --config Release

# Run embedding
./build/bin/llama-embedding -m jina-embeddings-v5-text-nano-clustering-Q8_0.gguf \
  --pooling last -p "Your text here"

License

CC-BY-NC-4.0. For commercial use, please contact us.