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Model details

GLM-5.3

GLM-5.3 is positioned by Z.ai as a post-training-only refinement of the same 753B Mixture-of-Experts base that underpins its predecessor, with all reported gains coming from scaled post-training rather than fresh pretraining. The work leveraged a previously built stack covering efficient long-context processing, reinforcement learning for long-horizon tasks, and large-scale asynchronous training, applied to a growing set of long-horizon task environments. Release notes frame the result as the most capable open-weights model for complex coding and long-horizon agentic work, and describe a 50% lift on Z.ai's in-house Code Bench over its predecessor.

Independently, Artificial Analysis scores GLM-5.3 at 60 on its Intelligence Index, placing it among the top ten of 182 tracked models, and a third-party coding-agent evaluation found it tied with a leading alternative while delivering stronger per-task economics. The model's defining qualitative story is its emergent cyber capability: Z.ai reports a state-of-the-art score on CyberGym for vulnerability discovery, with the largest gains appearing further along the exploitation chain, alongside a coordinated vulnerability disclosure program that surfaced thousands of issues across open-source projects. Practical fit centers on long-horizon coding agents, tool-driven workflows, and security review where post-trained reasoning depth matters more than native multimodal input.

SiliconFlowzai-org/GLM-5.3glm

Quick Info

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Provider
SiliconFlow
Model key
zai-org/GLM-5.3
Release date
Aug 14, 2026
Last updated
Aug 14, 2026
Input modalities
Output modalities
Capabilities

Cost

Input token cost
$1.40
Output token cost
$4.40

Limits

Output tokens
262,000 tokens
Context window
1,049,000 tokens

Transparent token rates

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Rates are shown per one million tokens. Combined means one million input plus one million output tokens.

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Latest news about GLM-5.3

Deep Infra

CoveragePreview

According to Interconnects' September 8, 2026 artifact roundup, Zhipu's GLM-5.3 switched from the MIT license used by GLM-5.2 and earlier releases to a custom Z.AI license that introduces a Model-as-a-Service clause. The clause requires that if a Licensee or any of its affiliates operates a Model-as-a-Service business Interconnects flags that while the US$10 billion revenue threshold is high relative to comparable clauses from Kimi K3 and other model providers, the term "affiliates" is undefined in the English text, creating uncertainty and a potential adoption barrier for downstream inference and fine-tuning providers. The authors

Together AI

CoverageBenchmark

GLM-5.3, the model released by Z.ai, ties Kimi K3 at 60 on the Artificial Analysis Intelligence Index, but that aggregate hides meaningful coding-agent differences according to a FriendliAI benchmark analysis published August 24, 2026. On SWE-bench Verified (500 real issues from open-source projects), GLM-5.3 and Kimi The most actionable takeaway from the analysis is that ensemble-style per-task selection between the two models reached 97.4% on SWE-bench Verified, materially exceeding either model alone. The piece argues that aggregate intelligence scores are not sufficient for choosing a coding-agent backbone, since the two models

Together AI

CoverageBenchmark

Z.ai released GLM-5.3 on August 14, 2026 under the tagline "Built to Code. Ready for Cyber Defense," as a post-training-only upgrade of the GLM-5.2 base. The 753B-total mixture-of-experts backbone is unchanged from GLM-5.2; all gains come from a scaled post-training program targeting agentic coding, long-horizon tool u The model retains a 1M-token context window with a 128K max output, ships with always-on reasoning that cannot be disabled (offering low/high/max effort with max as the default), and is priced identically to GLM-5.2 at $1.40 per million input tokens and $4.40 per million output tokens. A public ModelOpt NVFP4 expert-qu

Deep Infra

Coverage

Apidog's self-hosting preparation guide confirms GLM-5.3 shipped on August 14, 2026, with Z.ai indicating open weights would follow roughly two weeks later (around August 28) on the zai-org Hugging Face organization after Z.ai's most extensive risk review to date. The guide notes the GLM-5 family is a Mixture-of-Expert For infrastructure sizing, Apidog estimates weights near 1.5 TB at BF16 (roughly half at FP8) before KV cache, placing full-precision self-hosting in multi-GPU server territory, with vLLM and SGLang as realistic day-one serving stacks offering OpenAI-compatible endpoints. It expects paired BF16 and FP8 repos on day one

Deep Infra

CoverageBenchmark

Z.ai's GLM-5.3 was announced on August 14, 2026 as a post-training-only release built on the same base model as GLM-5.2, with every gain coming from post-training rather than architectural changes. According to Z.ai's documentation summarized on the page, GLM-5.3 is text-only, always reasoning, with a solid 1M-token co Z.ai reports a 50% coding gain over GLM-5.2 on its in-house Z.ai Code Bench and claims open-source SOTA on Terminal-Bench 3.0 and the CLI track of Agents' Last Exam, alongside rapid growth in vulnerability discovery and exploitation ability. Working with security teams in China, Z.ai reports GLM-5.3 surfaced 2,436 vuln

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