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TranslateGemma Technical Report

About

We present TranslateGemma, a suite of open machine translation models based on the Gemma 3 foundation models. To enhance the inherent multilingual capabilities of Gemma 3 for the translation task, we employ a two-stage fine-tuning process. First, supervised fine-tuning is performed using a rich mixture of high-quality large-scale synthetic parallel data generated via state-of-the-art models and human-translated parallel data. This is followed by a reinforcement learning phase, where we optimize translation quality using an ensemble of reward models, including MetricX-QE and AutoMQM, targeting translation quality. We demonstrate the effectiveness of TranslateGemma with human evaluation on the WMT25 test set across 10 language pairs and with automatic evaluation on the WMT24++ benchmark across 55 language pairs. Automatic metrics show consistent and substantial gains over the baseline Gemma 3 models across all sizes. Notably, smaller TranslateGemma models often achieve performance comparable to larger baseline models, offering improved efficiency. We also show that TranslateGemma models retain strong multimodal capabilities, with enhanced performance on the Vistra image translation benchmark. The release of the open TranslateGemma models aims to provide the research community with powerful and adaptable tools for machine translation.

Mara Finkelstein, Isaac Caswell, Tobias Domhan, Jan-Thorsten Peter, Juraj Juraska, Parker Riley, Daniel Deutsch, Geza Kovacs, Cole Dilanni, Colin Cherry, Eleftheria Briakou, Elizabeth Nielsen, Jiaming Luo, Kat Black, Ryan Mullins, Sweta Agrawal, Wenda Xu, Erin Kats, Stephane Jaskiewicz, Markus Freitag, David Vilar• 2026

Related benchmarks

TaskDatasetResultRank
Machine TranslationFLORES+ (test)
spBLEU35.45
128
Machine TranslationWMT24++ v1.0 (test)
XCOMET Score85.48
49
Machine Translation (xx -> zh)FLORES+ latest (test)
spBLEU26.75
30
Image TranslationVistra corpus 264 single-text images
MetricX2.58
6
Machine TranslationMQM Human Evaluation English→Italian
MQM Score1.8
3
Machine TranslationMQM Human Evaluation English→Marathi
MQM Score3.1
3
Machine TranslationMQM Human Evaluation English→Korean
MQM Score3.1
3
Machine TranslationMQM Human Evaluation English→Swahili
MQM Score4.2
3
Machine TranslationMQM Human Evaluation Czech→Ukrainian
MQM Score5.3
3
Machine TranslationMQM Human Evaluation English→Chinese
MQM Score6.3
3
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Other info

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