Model comparison

DeepSeek V4 Pro vs Llama 4 Scout

DeepSeek V4 Pro is the stronger model overall, scoring 54.3 to 27.7 on the Noometry Index. Llama 4 Scout costs 6.6× less per token, which makes it the better buy when DeepSeek V4 Pro's lead doesn't matter for your workload.

Last verified . 30 shared benchmarks.

DeepSeek V4 Pro DeepSeek

54.3

Rank #31 Confirmed

Llama 4 Scout Meta

27.7

Rank #330 Confirmed

Summary

  • They share 30 benchmarks with published results for both. DeepSeek V4 Pro scores higher in 9 categories and Llama 4 Scout in 0 categories; 9 gaps are clear of the uncertainty.
  • The widest gap is in reasoning, where DeepSeek V4 Pro leads 56.5 to 9.1.
  • The biggest single-benchmark swing is OTIS Mock AIME 2024-2025: 98.6% for DeepSeek V4 Pro and 7.8% for Llama 4 Scout.
  • Llama 4 Scout is cheaper at $0.10 / $0.30 per million input/output tokens, against $0.66 / $1.98 for DeepSeek V4 Pro.
  • DeepSeek V4 Pro accepts more context: 1M tokens versus 128K.

Side by side

DeepSeek V4 Pro and Llama 4 Scout specifications
DeepSeek V4 ProLlama 4 Scout
ProviderDeepSeekMeta
Noometry Index54.327.7
Released2026-04-242025-04-05
WeightsOpenOpen
Context window1M128K
Max output393K4K
Input $ / M tokens$0.66$0.10
Output $ / M tokens$1.98$0.30
Results tracked4843

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Category by category

Coding DeepSeek V4 Pro leads

DeepSeek V4 Pro: 52.4 (#34), Llama 4 Scout: 20.2 (#339)

Coding benchmarks
BenchmarkDeepSeek V4 ProLlama 4 Scout
SciCode51%17%
LMArena Coding14701286
SWE-bench Verified77.6%—
FrontierCode28.6%—
SWE-bench Verified (bash only)—9.1%
LMArena WebDev1582—
WeirdML66.2%—
BigCodeBench Complete—43.1%
ALE-Bench1,403—

Agentic & Tool Use DeepSeek V4 Pro leads

DeepSeek V4 Pro: 32.8 (#58), Llama 4 Scout: 24.6 (#119)

Agentic & Tool Use benchmarks
BenchmarkDeepSeek V4 ProLlama 4 Scout
APEX-Agents47.3%—
Berkeley Function Calling Leaderboard—28.1%
Vending-Bench 23,285—

Reasoning DeepSeek V4 Pro leads

DeepSeek V4 Pro: 56.5 (#24), Llama 4 Scout: 9.1 (#345)

Reasoning benchmarks
BenchmarkDeepSeek V4 ProLlama 4 Scout
ARC-AGI-261.3%0%
Kagi LLM Benchmark53.5%36.9%
ARC-AGI-190.5%0.5%
CritPt18%0%
LMArena Hard Prompts14611266
DTBench93.9%57.9%
LMCA45.5%12%
Epoch Capabilities Index155.31129.64
ForecastBench56.157.5
NYT Connections (extended)91.3%—
Chess Puzzles47%—
Mystery Game Puzzles43%—
Surface Evolver Bench40%—

Math DeepSeek V4 Pro leads

DeepSeek V4 Pro: 64.8 (#30), Llama 4 Scout: 19.6 (#286)

Math benchmarks
BenchmarkDeepSeek V4 ProLlama 4 Scout
OTIS Mock AIME 2024-202598.6%7.8%
LMArena Math14551287
FrontierMath (Tiers 1-3)64.6%—
FrontierMath Tier 426.8%—
MathArena Final-Answer Competitions76.6%—
ProofBench50%—
Omni-MATH—37.3%
MATH Level 5—62.3%
FrontierMath (Feb 2025 set)—0%

Knowledge DeepSeek V4 Pro leads

DeepSeek V4 Pro: 59.5 (#31), Llama 4 Scout: 31.9 (#217)

Knowledge benchmarks
BenchmarkDeepSeek V4 ProLlama 4 Scout
GPQA Diamond91.7%51.8%
Vectara Hallucination Rate8.6%7.7%
LMArena Expert14641235
SimpleQA Verified52.9%—
MMLU-Pro—74.2%
GPQA (HELM)—50.7%

Multimodal Not comparable

DeepSeek V4 Pro: —, Llama 4 Scout: 32.2 (#102)

Multimodal benchmarks
BenchmarkDeepSeek V4 ProLlama 4 Scout
LMArena Vision—1118
SpatialViz-Bench—34.2%

Multilingual DeepSeek V4 Pro leads

DeepSeek V4 Pro: 54.4 (#45), Llama 4 Scout: 41.0 (#212)

Multilingual benchmarks
BenchmarkDeepSeek V4 ProLlama 4 Scout
LMArena Non-English14391252
LMArena Chinese14861255
LMArena French14721282
LMArena German14581272
LMArena Japanese14451206
LMArena Korean14471207
LMArena Russian14531263
LMArena Spanish14581278

Instruction Following DeepSeek V4 Pro leads

DeepSeek V4 Pro: 76.1 (#47), Llama 4 Scout: 65.8 (#217)

Instruction Following benchmarks
BenchmarkDeepSeek V4 ProLlama 4 Scout
LMArena Instruction Following14481248
IFEval—81.8%

Long Context DeepSeek V4 Pro leads

DeepSeek V4 Pro: 45.0 (#51), Llama 4 Scout: 27.5 (#294)

Long Context benchmarks
BenchmarkDeepSeek V4 ProLlama 4 Scout
LMArena Longer Query14581265
Fiction.LiveBench—36%
CL-bench Life13.5%—

Writing & Preference DeepSeek V4 Pro leads

DeepSeek V4 Pro: 65.5 (#46), Llama 4 Scout: 37.0 (#261)

Writing & Preference benchmarks
BenchmarkDeepSeek V4 ProLlama 4 Scout
LMArena Text14511279
LMArena Creative Writing14461249
EQ-Bench Creative Writing1553783
LMArena Multi-Turn14671280
WildBench—78%
EQ-Bench 41166—

Frequently asked questions

Is DeepSeek V4 Pro better than Llama 4 Scout?

DeepSeek V4 Pro is the stronger model overall, scoring 54.3 to 27.7 on the Noometry Index. Llama 4 Scout costs 6.6× less per token, which makes it the better buy when DeepSeek V4 Pro's lead doesn't matter for your workload.

Which is cheaper, DeepSeek V4 Pro or Llama 4 Scout?

Llama 4 Scout is cheaper. It lists at $0.10 per million input tokens and $0.30 per million output tokens; DeepSeek V4 Pro lists at $0.66 and $1.98.

Is DeepSeek V4 Pro or Llama 4 Scout better for coding?

DeepSeek V4 Pro scores higher on coding benchmarks: 52.4 versus 20.2 in the Noometry coding category.

Which has the bigger context window?

DeepSeek V4 Pro does, with 1M tokens against 128K.

How many benchmarks do DeepSeek V4 Pro and Llama 4 Scout share?

30 benchmarks have published results for both models. DeepSeek V4 Pro has 48 scored results on Noometry and Llama 4 Scout has 43.

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