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Ant Digital Unveils Financial AI Model as China’s LLM Race Reaches Banking Sector
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蚂蚁数科推出Agentar-Fin-R1,一款专为金融领域设计的金融推理大模型,旨在巩固其在中国AI市场的领先地位。该模型基于蚂蚁自研的Qwen3大模型架构,提供320亿和80亿参数版本,旨在成为金融应用领域的“可信、可优化的智能核心”。Agentar-Fin-R1在FinEval 1.0和FinanceIQ等基准测试中表现优于同类开源模型,有效解决了金融任务中的推理复杂性、安全合规性及幻觉控制等痛点。蚂蚁数科认为,构建垂直化金融模型是AI深度融入银行业、保险业和资产管理业的必然趋势。

💰 **金融专用大模型Agentar-Fin-R1发布:** 蚂蚁数科推出了Agentar-Fin-R1,一款专为金融推理设计的通用大模型,具备320亿和80亿参数版本,旨在成为金融行业的智能核心。该模型在FinEval 1.0和FinanceIQ等金融领域基准测试中,表现优于同类开源模型,解决了金融应用中常见的推理复杂性、安全合规性及幻觉控制等问题。

🚀 **技术优势与应用前景:** Agentar-Fin-R1基于蚂蚁自研的Qwen3大模型架构,在数据处理上运用了覆盖六大金融门类和66个子类别的海量金融数据,并通过链式思维标注系统增强推理精度。同时,其加权训练算法提高了数据效率,降低了金融机构大规模集成AI的成本,有望推动AI在金融领域的深度应用。

📈 **市场潜力与行业趋势:** 预计到2027年,中国金融行业生成式AI平台和应用解决方案的市场规模将达到35亿元人民币,年增长近五倍。鉴于数据安全顾虑,约91%的市场将来自本地部署。Agentar-Fin-R1的推出,契合了金融机构对数据隐私、合规性和逻辑推理的严格需求,也反映了中国科技企业向领域专用大模型转型的趋势。

💡 **推动AI在金融领域落地:** 蚂蚁数科已与多家银行和保险公司合作,推出了100多项针对金融场景的智能代理解决方案,包括对话式银行应用和AI运营平台,显著提升了用户体验和运营效率。蚂蚁数科总裁王志恒指出,企业级智能代理已进入爆发期,从“可用”到“易用”的转变将是AI+金融革命的关键。

AsianFin -- Ant Digital Technologies Co. has launched a new large language model tailored for financial reasoning, marking its latest bid to secure a leading role in China's increasingly specialized AI landscape.

The model, named Agentar-Fin-R1, was unveiled at the 2025 World Artificial Intelligence Conference in Shanghai last week. Developed on top of Qwen3, Ant's proprietary large model architecture, Agentar-Fin-R1 comes in 32 billion and 8 billion parameter versions, designed to serve as a “trustworthy, optimizable intelligent core” for financial industry applications.

The Hangzhou-based company said Agentar-Fin-R1 outperforms comparable open-source financial LLMs on benchmarks like FinEval 1.0 and FinanceIQ, addressing key pain points such as reasoning complexity, security compliance, and hallucination control — a persistent issue in applying general-purpose AI models to real-world finance tasks.

“There’s still a knowledge gap between foundation models and industry-level applications,” Zhao Wenbiao, CEO of Ant Digital, said. “Building verticalized financial models is inevitable for AI’s deep integration into banking, insurance, and asset management.”

As generative AI transitions from hype to deployment, financial institutions are finding that general-purpose models fail to meet the sector’s stringent demands for data privacy, regulatory compliance, and logic-based reasoning.

According to IDC, China’s market for generative AI platforms and application solutions in the financial sector is projected to reach 3.5 billion yuan ($480 million) by 2027, growing nearly fivefold from 2024. About 91% of this market is expected to come from on-premises deployments, given data security concerns.

Agentar-Fin-R1 is Ant’s answer to these demands. The model was built on a dataset encompassing six major financial sectors and 66 subcategories, spanning banking, securities, insurance, funds, and trusts. Ant leveraged hundreds of billions of financial data points and developed a chain-of-thought annotation system to enhance reasoning precision.

The company also introduced a weighted training algorithm to improve data efficiency, reducing the need for costly fine-tuning processes. This, Ant claims, will lower the barriers for financial institutions to integrate AI at scale.

Agentar-Fin-R1 topped FinEval 1.0 and FinanceIQ benchmarks, outperforming open-source rivals like DeepSeek and Xuanyuan. In addition, it led the Finova Large Model Financial Application Benchmark, co-developed with Industrial and Commercial Bank of China, Bank of Ningbo, and other institutions, which measures agent capabilities, complex reasoning, and security compliance.

Ant Digital is offering the model in multiple configurations — including a Mixture of Experts (MoE) variant for high-speed inference — to meet diverse deployment needs. The company also provides 14B and 72B non-reasoning versions optimized for other financial tasks.

“Reliable reasoning models are the engine that drive enterprise-level intelligent agents,” said Wang Wei, CTO of Ant Digital. “Without them, the entire AI ecosystem lacks traction.”

Ant Digital’s financial AI ambitions reflect a broader shift among Chinese tech firms towards domain-specific LLMs. With foundational models reaching diminishing returns in general capabilities, companies are now racing to capture vertical markets such as finance, healthcare, and manufacturing.

Since early 2025, Ant Digital has launched more than 100 intelligent agent solutions for financial scenarios in partnership with banks and insurers. These range from AI-powered mobile banking and smart customer service to automated risk control systems.

For instance, a Shanghai-based commercial bank partnered with Ant to roll out a conversational banking app that allows users to conduct transactions through natural language, boosting monthly active users by 25% year-on-year.

Ant also helped Dadi Insurance develop an AI operations platform, integrating data, computing, and application frameworks — a first for China’s insurance sector. The collaboration reduced deployment cycles by 80% and increased accuracy by 30%, according to company estimates.

Ant Digital now counts 100% of China’s state-owned and joint-stock banks and over 60% of regional banks among its enterprise clients.

AI+Finance: From “Usable” to “Easy to Use”

While generative AI still faces significant hurdles in professional sectors, Ant Digital believes the next phase of adoption hinges on how seamlessly models can be embedded into business workflows.

“The question for banks is no longer whether to adopt AI, but how to operationalize it effectively,” said Wang Zhiheng, President of Agricultural Bank of China, during a recent industry forum.

Wang Wei echoed this sentiment, noting that enterprise-level intelligent agents have entered a breakout phase in 2025. “This is a marathon with no finish line,” he said. “But the shift from ‘usable’ to ‘easy to use’ will be key in determining who leads the AI+finance revolution.”

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蚂蚁数科 Agentar-Fin-R1 金融大模型 AI in Finance 垂直领域AI
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