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Model A
GPT-5.1-Codex

OpenAI

51.62/100

Estimated · Public rank #130

90% interval 40.163.1

GPT-5.1-Codex vs Llama 4 Maverick

Updated September 4, 2026. Public scores include evidence status and uncertainty. They are not guarantees for a specific workload.

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Model B
Llama 4 Maverick

Meta

24.19/100

Supported · Public rank #227

90% interval 17.830.6

Decision reading

The public evidence has no benchmark result shared by both models, so it does not support a quality verdict. Use the documented cost, context, and runtime rows instead.

0 results are shared. Category rows resting on Estimated evidence or different benchmark sets are marked directional and do not name a winner.

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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.

  • Long documents

    Prompts that approach the documented context limit

    Llama 4 Maverick

    Llama 4 Maverick has the larger documented context window.

    Confidence: documented

Show secondary and unsupported calls
  • Coding work

    Code generation, repair, and software-engineering tasks

    Not enough matched evidence

    GPT-5.1-Codex and Llama 4 Maverick are scored on Estimated evidence for coding, so the reading is directional rather than like-for-like.

    Confidence: limited

  • Agentic work

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

    Not enough matched evidence

    GPT-5.1-Codex and Llama 4 Maverick are scored on Estimated evidence for agentic, so the reading is directional rather than like-for-like.

    Confidence: limited

  • 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

What is actually comparable

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

Shared results
0
GPT-5.1-Codex only
3
Llama 4 Maverick only
1
Like-for-like categories
0 / 8

4 categories rest on Estimated evidence or different evidence sets. Those rows remain visible for coverage context but do not name a winner.

Category results, on a stated basis

Each row shows the public-lane category score for both models: the BenchAlign 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

Directional only
GPT-5.1-Codex
51.4
Estimated · #54/151
Llama 4 Maverick
25.5
Estimated · #145/151
Basis
BenchAlign lane · 2 vs 0 public rows
Reading
Directional only

Coding

Directional only
GPT-5.1-Codex
47.4
Estimated · #89/183
Llama 4 Maverick
26.8
Estimated · #175/183
Basis
BenchAlign lane · 1 vs 0 public rows
Reading
Directional only

Knowledge

Directional only
GPT-5.1-Codex
53.3
Estimated · #69/181
Llama 4 Maverick
31.9
Estimated · #172/181
Basis
BenchAlign lane · 0 vs 0 public rows
Reading
Directional only

Instruction following

Directional only
GPT-5.1-Codex
85.3
#42/120
Llama 4 Maverick
50.3
#79/120
Basis
Provisional lane · 0 vs 0 weighted rows
Reading
Directional only

Reasoning

Not comparable
GPT-5.1-Codex
70.6
Unranked · 2 rankable rows
Llama 4 Maverick
57.0
Unranked · 2 rankable rows
Basis
Provisional lane · 0 vs 0 weighted rows
Reading
Not comparable

Math

Not comparable
GPT-5.1-Codex
Not ranked
Llama 4 Maverick
25.3
Unranked · 1 rankable row
Basis
Provisional lane · 0 vs 1 weighted rows
Reading
Not comparable

Multilingual

Not comparable
GPT-5.1-Codex
Not ranked
Llama 4 Maverick
Not ranked
Basis
Provisional lane · 0 vs 0 weighted rows
Reading
Not comparable

Multimodal

Not comparable
GPT-5.1-Codex
66.8
Unranked · 1 rankable row
Llama 4 Maverick
51.5
Unranked · 1 rankable row
Basis
Provisional lane · 0 vs 0 weighted rows
Reading
Not comparable

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

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.

A shared-evidence shape is not available.

BenchLM does not draw a radar or infer missing axes when the matched evidence is too sparse.

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

GPT-5.1-Codex
$0.00625
Fits in one request
Llama 4 Maverick
Self-hosted; infrastructure cost varies
Fits in one request

Llama 4 Maverick has no comparable published API token rate.

Repository review

50K fresh input + 3K output tokens

GPT-5.1-Codex
$0.0925
Fits in one request
Llama 4 Maverick
Self-hosted; infrastructure cost varies
Fits in one request

Llama 4 Maverick has no comparable published API token rate.

Cache-heavy agent loop

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

GPT-5.1-Codex
$0.15
Fits in one request
Llama 4 Maverick
Self-hosted; infrastructure cost varies
Fits in one request
Cached-input rate unavailable

Llama 4 Maverick has no comparable published API token rate.

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.

GPT-5.1-Codex

$0.125 per 1M cached input tokens

OpenAI GPT-5.1-Codex model documentation

Llama 4 Maverick

No comparable hosted API rate

Documented inputs

GPT-5.1-Codex

Not sourced

Llama 4 Maverick

Not sourced

Documented outputs

GPT-5.1-Codex

Not sourced

Llama 4 Maverick

Not sourced

Provider availability

GPT-5.1-Codex

Not sourced

Llama 4 Maverick

Not sourced

Reasoning profile

GPT-5.1-Codex

Reasoning

Llama 4 Maverick

Non-Reasoning

Weight access

GPT-5.1-Codex

Proprietary

Llama 4 Maverick

Open Weight

License

GPT-5.1-Codex

Proprietary

Llama 4 Maverick

Open Weight

Release date

GPT-5.1-Codex

2025-10-15

Llama 4 Maverick

2026-02-28

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
The public evidence has no benchmark result shared by both models, so it does not support a quality verdict.
Workload cost
A complete comparable API-rate estimate is not available for both models.
Context tradeoff
Llama 4 Maverick has the larger documented window (1M).

Run the same representative tasks against both endpoints before changing production traffic.

Self-host vs API cost

Estimates at 50,000 req/day · 1000 tokens/req average.

GPT-5.1-Codex
API / mo$8,438
Self-host / moNot listed
Break-even
Proprietary model — self-hosting not applicable.
Llama 4 Maverick
API / mo$0
Self-host / mo$2,610
Break-even
Model the full break-even

Benchmark evidence

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

Browse raw public benchmark evidence4 rows

Agentic

  • Gert Labs

    GPT-5.1-Codex49.68%
    Source
    Llama 4 Maverick

    Not directly comparable

  • JobBench

    GPT-5.1-Codex26.2%
    Source
    Llama 4 Maverick

    Not directly comparable

Coding

  • Vibe Code Bench

    GPT-5.1-Codex13.12%
    Source
    Llama 4 Maverick

    Not directly comparable

Math

  • FrontierMath v2 (Tiers 1-3)

    GPT-5.1-Codex
    Llama 4 Maverick0.690%
    Source

    Not directly comparable

Frequently asked questions

Which is better, GPT-5.1-Codex or Llama 4 Maverick?

The public evidence has no benchmark result shared by both models, so it does not support a quality verdict. The page therefore keeps the decision tied to the specific documented workload.

Which is better for coding, GPT-5.1-Codex or Llama 4 Maverick?

GPT-5.1-Codex scores higher for coding on the public lane, 47.4 to 26.8. GPT-5.1-Codex and Llama 4 Maverick are scored on Estimated evidence for coding, so the reading is directional rather than like-for-like. BenchLM does not name a winner for coding from a directional reading; read the shared benchmark rows directly and test the models on the same task set.

Which is better for agentic tasks, GPT-5.1-Codex or Llama 4 Maverick?

GPT-5.1-Codex scores higher for agentic tasks on the public lane, 51.4 to 25.5. GPT-5.1-Codex and Llama 4 Maverick are scored on Estimated evidence for agentic tasks, so the reading is directional rather than like-for-like. BenchLM does not name a winner for agentic tasks from a directional reading; read the shared benchmark rows directly and test the models on the same task set.

Which costs less, GPT-5.1-Codex or Llama 4 Maverick?

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, GPT-5.1-Codex or Llama 4 Maverick?

Llama 4 Maverick has the larger documented context window: 1M, compared with 400K.

Related comparisons

Last updated September 4, 2026

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