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BenchLM

Gemini 3.7 Flash vs Qwen3.7 Max

Updated September 27, 2026. Rank says Gemini 3.7 Flash is ahead. Price, access, and your workload can each overturn that. Public scores include evidence status and uncertainty.

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Decision reading

Gemini 3.7 Flash has the higher public score estimate, 67.66 versus 63.18, but the 90% score intervals overlap. Treat that as a lead, not a settled winner. 5 results are shared. Category rows resting on Estimated evidence or different benchmark sets are marked directional and do not name a winner.

Model A
Google logo

Google

67.66/100

Supported · Public rank #19

90% interval 63.0–72.3

Model B
Alibaba logo

Alibaba

63.18/100

Supported · Public rank #34

90% interval 54.1–72.2

Shared results
5
Gemini 3.7 Flash only
20
Qwen3.7 Max only
36
Like-for-like categories
3 / 8
Supported: Gemini 3.7 Flash and Qwen3.7 MaxHow the comparison works

Which one for your work

Recommendations appear only when a shared evidence basis or an explicit operating constraint supports the call. Secondary and unsupported use cases stay disclosed below the initial list.

  • Coding work

    Code generation, repair, and software-engineering tasks

    Gemini 3.7 Flash

    Gemini 3.7 Flash leads on the public coding lane, 60.3 to 46.2, with Supported evidence for both models, although the 90% intervals overlap.

    Confidence: limited
  • Agentic work

    Tool use, computer use, and multi-step task completion

    Gemini 3.7 Flash

    Gemini 3.7 Flash leads on the public agentic lane, 58.6 to 39.8, with Supported evidence for both models, although the 90% intervals overlap.

    Confidence: limited
Show secondary and unsupported calls
  • Long documents

    Prompts that approach the documented context limit

    No clear pick

    The documented context windows are equal.

    Confidence: documented
  • Chat turn cost

    1K fresh input + 500 output tokens

    Not enough matched evidence

    A complete comparable API-rate estimate is not available for both models.

    Confidence: listed-rates
  • Cache-heavy agent loop cost

    200K cached + 20K fresh input + 10K output tokens

    Not enough matched evidence

    A complete comparable API-rate estimate is not available for both models.

    Confidence: listed-rates
  • Repository review cost

    50K fresh input + 3K output tokens

    Not enough matched evidence

    A complete comparable API-rate estimate is not available for both models.

    Confidence: listed-rates

Which one for a specific job

Choose a job from the LLM Selector's task catalog to see the category row it rests on, under the same basis rules as the table below. A directional row stays directional; choosing a job never creates a winner.

The same task catalog as the LLM Selector. Each job names the evidence surface it rests on; nothing here adds a new score.

60.3Gemini 3.7 Flash46.2Qwen3.7 Max

Like-for-like · BenchAlign v5.7

Gemini 3.7 Flash leads the like-for-like coding row, although the 90% intervals overlap.

Coding scores combine specific tasks and setups. Match the editor, harness, and effort to your workflow.

Same basis rules as the category table below

What is actually comparable

Shared results can support a head-to-head reading. Results present for only one model describe coverage, not superiority.

Shape of the matched evidence

Only shared public evidence is shown. Sparse evidence stays a ruled list rather than being closed into a radar shape.

Too few matched category axes support a radar. The ruled list below shows only shared benchmark results; positions use each benchmark’s normalized display scale when available.

Bars run 0–100 on each benchmark’s normalized display scale

Category results, on a stated basis

Each row shows the public-lane category score for both models: the BenchAlign v5.7 lane for agentic, coding, and knowledge, and the weighted public rows elsewhere, with the same rank each model page reports. A row is like-for-like only when both scores rest on Supported evidence or the same weighted set. Directional and not-comparable rows remain visible, but they never receive a winner.

Agentic

Like-for-like
Gemini 3.7 Flash
58.6
Supported · #20/105
Qwen3.7 Max
39.8
Supported · #46/105
Basis
BenchAlign v5.7 lane · 7 vs 10 public rows
Reading
Gemini 3.7 Flash leads · intervals overlap

Coding

Like-for-like
Gemini 3.7 Flash
60.3
Supported · #17/135
Qwen3.7 Max
46.2
Supported · #45/135
Basis
BenchAlign v5.7 lane · 6 vs 10 public rows
Reading
Gemini 3.7 Flash leads · intervals overlap

Knowledge

Like-for-like
Gemini 3.7 Flash
71.1
Supported · #10/158
Qwen3.7 Max
60.8
Supported · #34/158
Basis
BenchAlign v5.7 lane · 6 vs 9 public rows
Reading
Gemini 3.7 Flash leads · intervals overlap

Reasoning

Not comparable
Gemini 3.7 Flash
77.8
Unranked · 5 rankable rows
Qwen3.7 Max
76.1
Unranked · 3 rankable rows
Basis
Provisional lane · 1 vs 1 weighted rows
Reading
Not comparable

Multimodal

Not comparable
Gemini 3.7 Flash
82.6
#10/50
Qwen3.7 Max
Not ranked
Basis
Provisional lane · 1 vs 0 weighted rows
Reading
Not comparable

Multilingual

Not comparable
Gemini 3.7 Flash
Not ranked
Qwen3.7 Max
100.0
#1/12
Basis
Provisional lane · 0 vs 1 weighted rows
Reading
Not comparable

Instruction following

Not comparable
Gemini 3.7 Flash
Not ranked
Qwen3.7 Max
89.2
#17/124
Basis
Provisional lane · 0 vs 1 weighted rows
Reading
Not comparable

Math

Not comparable
Gemini 3.7 Flash
Not ranked
Qwen3.7 Max
81.9
Unranked · 3 rankable rows
Basis
Provisional lane · 0 vs 1 weighted rows
Reading
Not comparable

Ranks count the models scored in each category’s lane, so the agentic, coding, and knowledge denominators (BenchAlign v5.7) differ from the provisional-lane categories. Unranked scores sit on the provisional lane’s scale but never name a winner. Like-for-like rows within 0.5 points read as a practical tie.

Supported evidence per lane · bars run 0–100Methodology

What each workload costs

Three fixed token mixes turn per-token rates into comparable decisions. Each scenario states context fit and whether cached input had to fall back to the published list-input rate.

Chat turn

1K fresh input + 500 output tokens

Gemini 3.7 Flash
$0.00262
Fits in one request
Qwen3.7 Max
API rate not published
Fits in one request

Qwen3.7 Max has no comparable published API token rate.

Repository review

50K fresh input + 3K output tokens

Gemini 3.7 Flash
$0.04875
Fits in one request
Qwen3.7 Max
API rate not published
Fits in one request

Qwen3.7 Max has no comparable published API token rate.

Cache-heavy agent loop

200K cached + 20K fresh input + 10K output tokens

Gemini 3.7 Flash
$0.0675
Fits in one request
Qwen3.7 Max
API rate not published
Fits in one request
Cached-input rate unavailable

Qwen3.7 Max has no comparable published API token rate.

Cached input falls back to the list input rate only where a cached rate is unpublished

Specification differences

Sourced differences are shown directly. Missing facts stay explicit instead of being inferred from a model name or family.

Cached-input rate

A missing cached-input rate falls back to the listed input rate only in the stated workload estimate.

Gemini 3.7 Flash

$0.075 per 1M cached input tokens

Google Gemini API pricing

Qwen3.7 Max

No comparable hosted API rate

Provider availability

Gemini 3.7 Flash

Generally Available · Gemini API, Google AI Studio, Gemini App - Spark, Gemini Enterprise App, Gemini Enterprise Agent Platform, Google Antigravity

Google DeepMind Gemini 3.7 Flash model card

Qwen3.7 Max

Not sourced

Reasoning profile

Gemini 3.7 Flash

Reasoning

Qwen3.7 Max

Reasoning

Weight access

Gemini 3.7 Flash

Proprietary

Qwen3.7 Max

Proprietary

License

Gemini 3.7 Flash

Proprietary

Qwen3.7 Max

Proprietary

Release date

Gemini 3.7 Flash

2026-08-13

Qwen3.7 Max

2026-05-16

If you already use one of these models

Deployment change
The models list different providers, so authentication, endpoint behavior, limits, and feature support may change.
Quality signal
Gemini 3.7 Flash has the higher public score estimate, 67.66 versus 63.18, but the 90% score intervals overlap.
Workload cost
A complete comparable API-rate estimate is not available for both models.
Context tradeoff
Both models list 1M.
Run the same representative tasks against both endpoints before changing production traffic.

Questions

Which is better, Gemini 3.7 Flash or Qwen3.7 Max?

Gemini 3.7 Flash has the higher public score estimate, 67.66 versus 63.18, but the 90% score intervals overlap. The higher estimate is not a decisive winner because the uncertainty ranges overlap.

Which is better for coding, Gemini 3.7 Flash or Qwen3.7 Max?

Gemini 3.7 Flash leads the public coding lane, 60.3 to 46.2, with Supported evidence for both models, although the 90% intervals overlap.

Which is better for agentic tasks, Gemini 3.7 Flash or Qwen3.7 Max?

Gemini 3.7 Flash leads the public agentic tasks lane, 58.6 to 39.8, with Supported evidence for both models, although the 90% intervals overlap.

Which costs less, Gemini 3.7 Flash or Qwen3.7 Max?

Both models do not have comparable published API token rates, so this page does not name a universal price winner.

Which has the larger context window, Gemini 3.7 Flash or Qwen3.7 Max?

Both models list the same context window, 1M.

Benchmark evidence

The full public result ledger is available for audit without forcing a wide desktop table onto a phone.

Browse raw public benchmark evidence61 rows

Agentic

  • Terminal-Bench 2.1

    Gemini 3.7 Flash85.8%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • Terminal-Bench 3.0

    Gemini 3.7 Flash14.9%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • AutomationBench

    Gemini 3.7 Flash30.4%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • OSWorld 2.0

    Gemini 3.7 Flash47.9%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • Agents' Last Exam

    Gemini 3.7 Flash26.3%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • Terminal-Bench 2.1 (Vals)

    Gemini 3.7 Flash77.5%
    Source
    Qwen3.7 Max61.0%
    Source

    Gemini 3.7 Flash leads this result

  • ApprenticeBench

    Gemini 3.7 Flash16%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • Terminal-Bench 2.0

    Gemini 3.7 Flash—
    Qwen3.7 Max69.7%
    Source

    Not directly comparable

  • QwenClawBench

    Gemini 3.7 Flash—
    Qwen3.7 Max64.3%
    Source

    Not directly comparable

  • Claw-Eval

    Gemini 3.7 Flash—
    Qwen3.7 Max65.2%
    Source

    Not directly comparable

  • BFCL v4

    Gemini 3.7 Flash—
    Qwen3.7 Max75.0%
    Source

    Not directly comparable

  • MCP Atlas

    Gemini 3.7 Flash—
    Qwen3.7 Max76.4%
    Source

    Not directly comparable

  • VITA-Bench

    Gemini 3.7 Flash—
    Qwen3.7 Max47.9%
    Source

    Not directly comparable

  • HLE w/ tools

    Gemini 3.7 Flash—
    Qwen3.7 Max53.5%
    Source

    Not directly comparable

  • Gert Labs

    Gemini 3.7 Flash—
    Qwen3.7 Max64.27%
    Source

    Not directly comparable

  • ResearchClawBench

    Gemini 3.7 Flash—
    Qwen3.7 Max18.7%
    Source

    Not directly comparable

Coding

  • FrontierCode 1.1 Main

    Gemini 3.7 Flash43.6%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • DeepSWE

    Gemini 3.7 Flash65.3%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • Terminal-Bench 2.1

    Gemini 3.7 Flash85.8%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • FrontierSWE v2

    Gemini 3.7 Flash20.3%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • LiveCodeBench (Vals)

    Gemini 3.7 Flash88.7%
    Source
    Qwen3.7 Max87.1%
    Source

    Gemini 3.7 Flash leads this result

  • SWE-bench (Vals)

    Gemini 3.7 Flash80.8%
    Source
    Qwen3.7 Max68.8%
    Source

    Gemini 3.7 Flash leads this result

  • SWE-bench Verified

    Gemini 3.7 Flash—
    Qwen3.7 Max80.4%
    Source

    Not directly comparable

  • SWE-bench Pro

    Gemini 3.7 Flash—
    Qwen3.7 Max60.6%
    Source

    Not directly comparable

  • SWE Multilingual

    Gemini 3.7 Flash—
    Qwen3.7 Max78.3%
    Source

    Not directly comparable

  • NL2Repo

    Gemini 3.7 Flash—
    Qwen3.7 Max47.2%
    Source

    Not directly comparable

  • SciCode

    Gemini 3.7 Flash—
    Qwen3.7 Max53.5%
    Source

    Not directly comparable

  • LiveCodeBench

    Gemini 3.7 Flash—
    Qwen3.7 Max91.6%
    Source

    Not directly comparable

  • Terminal-Bench 2.0

    Gemini 3.7 Flash—
    Qwen3.7 Max69.7%
    Source

    Not directly comparable

  • OpenHarmony Bench

    Gemini 3.7 Flash—
    Qwen3.7 Max53.4%
    Source

    Not directly comparable

Reasoning

  • MRCR v2 64K-128K

    Gemini 3.7 Flash97%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • ARC-AGI-1

    Gemini 3.7 Flash95.50%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • ARC-AGI-2

    Gemini 3.7 Flash84.6%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • MRCRv2

    Gemini 3.7 Flash—
    Qwen3.7 Max90.4%
    Source

    Not directly comparable

  • CritPt

    Gemini 3.7 Flash—
    Qwen3.7 Max13.4%
    Source

    Not directly comparable

Multimodal

  • CharXiv w/o tools

    Gemini 3.7 Flash84.5%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • CharXiv

    Gemini 3.7 Flash88.7%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • LVBench

    Gemini 3.7 Flash85.4%
    Source
    Qwen3.7 Max—

    Not directly comparable

Knowledge

  • HLE-Verified

    Gemini 3.7 Flash53.6%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • LABBench2

    Gemini 3.7 Flash82.1%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • BioMysteryBench (human-solvable)

    Gemini 3.7 Flash87.1%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • BioMysteryBench (human-difficult)

    Gemini 3.7 Flash43.5%
    Source
    Qwen3.7 Max—

    Not directly comparable

  • GPQA Diamond (Vals)

    Gemini 3.7 Flash93.9%
    Source
    Qwen3.7 Max90.2%
    Source

    Gemini 3.7 Flash leads this result

  • MMLU-Pro (Vals)

    Gemini 3.7 Flash90.1%
    Source
    Qwen3.7 Max89.3%
    Source

    Gemini 3.7 Flash leads this result

  • GPQA

    Gemini 3.7 Flash—
    Qwen3.7 Max92.4%
    Source

    Not directly comparable

  • GPQA-D

    Gemini 3.7 Flash—
    Qwen3.7 Max92.4%
    Source

    Not directly comparable

  • HLE

    Gemini 3.7 Flash—
    Qwen3.7 Max41.4%
    Source

    Not directly comparable

  • MMLU-Pro

    Gemini 3.7 Flash—
    Qwen3.7 Max89.6%
    Source

    Not directly comparable

  • MMLU-Redux

    Gemini 3.7 Flash—
    Qwen3.7 Max95%
    Source

    Not directly comparable

  • SuperGPQA

    Gemini 3.7 Flash—
    Qwen3.7 Max73.6%
    Source

    Not directly comparable

  • MMMLU

    Gemini 3.7 Flash—
    Qwen3.7 Max90.3%
    Source

    Not directly comparable

Multilingual

  • MMLU-ProX

    Gemini 3.7 Flash—
    Qwen3.7 Max87%
    Source

    Not directly comparable

  • NOVA-63

    Gemini 3.7 Flash—
    Qwen3.7 Max59.0%
    Source

    Not directly comparable

  • INCLUDE

    Gemini 3.7 Flash—
    Qwen3.7 Max86.2%
    Source

    Not directly comparable

  • MAXIFE

    Gemini 3.7 Flash—
    Qwen3.7 Max89.2%
    Source

    Not directly comparable

  • PolyMath

    Gemini 3.7 Flash—
    Qwen3.7 Max86.5%
    Source

    Not directly comparable

Instruction following

  • IFEval

    Gemini 3.7 Flash—
    Qwen3.7 Max94.3%
    Source

    Not directly comparable

  • IFBench

    Gemini 3.7 Flash—
    Qwen3.7 Max79.1%
    Source

    Not directly comparable

Math

  • HMMT Feb 2026

    Gemini 3.7 Flash—
    Qwen3.7 Max97.1%
    Source

    Not directly comparable

  • IMOAnswerBench

    Gemini 3.7 Flash—
    Qwen3.7 Max90.0%
    Source

    Not directly comparable

  • Apex

    Gemini 3.7 Flash—
    Qwen3.7 Max44.5%
    Source

    Not directly comparable

61 public results · 5 shared

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Last updated September 27, 2026