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20232025
most citedjina-embeddings-v3: Multilingual Embeddings With Task LoRA

17 citations · 25 across the 6 of their papers we have counts for

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cs.CL2025

jina-vlm: Small Multilingual Vision Language Model

Andreas Koukounas, Georgios Mastrapas, Florian Hönicke +3

We present jina-vlm, a token-efficient 2.4B parameter vision-language model that achieves state-of-the-art multilingual VQA performance among open 2B-scale VLMs. The model couples…

cs.CL20242 cited

jina-clip-v2: Multilingual Multimodal Embeddings for Text and Images

Andreas Koukounas, Georgios Mastrapas, Sedigheh Eslami +7

Contrastive Language-Image Pretraining (CLIP) has been widely used for crossmodal information retrieval and multimodal understanding tasks. However, CLIP models are mainly optimize…

cs.CL202417 cited

jina-embeddings-v3: Multilingual Embeddings With Task LoRA

Saba Sturua, Isabelle Mohr, Mohammad Kalim Akram +8

We introduce jina-embeddings-v3, a novel text embedding model with 570 million parameters, achieves state-of-the-art performance on multilingual data and long-context retrieval tas…

cs.CL20242 cited

Jina CLIP: Your CLIP Model Is Also Your Text Retriever

Andreas Koukounas, Georgios Mastrapas, Michael Günther +11

Contrastive Language-Image Pretraining (CLIP) is widely used to train models to align images and texts in a common embedding space by mapping them to fixed-sized vectors. These mod…

cs.CL20243 cited

Multi-Task Contrastive Learning for 8192-Token Bilingual Text Embeddings

Isabelle Mohr, Markus Krimmel, Saba Sturua +16

We introduce a novel suite of state-of-the-art bilingual text embedding models that are designed to support English and another target language. These models are capable of process…

cs.CL2023

Jina Embeddings 2: 8192-Token General-Purpose Text Embeddings for Long Documents

Michael Günther, Jackmin Ong, Isabelle Mohr +10

Text embedding models have emerged as powerful tools for transforming sentences into fixed-sized feature vectors that encapsulate semantic information. While these models are essen…