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[ARTICLE · art-14067] src=arxiv.org pub= topic=ai-agents verified=true sentiment=↑ positive

QUEST: Training Frontier Deep Research Agents with Fully Synthetic Tasks

Researchers released QUEST, a family of open-source AI models ranging from 2B to 35B parameters, designed to function as general-purpose deep research agents for long-horizon search tasks. The models, trained using a fully synthetic data pipeline with verifiable rewards and no human annotation, approach or exceed the performance of proprietary frontier systems across eight deep research benchmarks. The team made all models, training data, and scripts publicly available to advance open research in knowledge synthesis and citation-grounded report generation.

read1 min publishedMay 26, 2026

arXiv:2605.24218v1 Announce Type: new Abstract: Deep research agents extend the role of search engines from retrieving keyword-matched pages to synthesizing knowledge, fundamentally changing how humans interact with information. However, frontier systems remain proprietary, while existing open agents often generalize poorly across different task types, leaving unclear how to train a broadly capable deep research agent. We release QUEST, a family of open models (ranging from 2B to 35B) that serve as general-purpose deep research agents designed to handle a wide range of long-horizon search tasks, with strong capabilities in fact seeking, citation grounding, and report synthesis. To build QUEST, we propose an effective training recipe combining mid-training, supervised fine-tuning, and reinforcement learning. Central to this recipe is a curated data synthesis pipeline based on unified rubric trees, which applies to different task types and enables synthesizing training data with verifiable rewards without human annotation. In addition, QUEST incorporates a built-in context management mechanism that enables effective long-horizon reasoning and knowledge synthesis. Using only 8K synthesized tasks, QUEST approaches or even surpasses frontier closed-source agents across eight deep research benchmarks spanning diverse task types, and achieves the best overall performance among recent open-weight agents. We released everything: models, data, and training scripts.

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