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DeepSeek R1 vs Llama 4 Maverick

How do these models stack up? Below is an expert side-by-side comparison of specifications, context window capacity, live pricing per million tokens, and standardized benchmark scores for DeepSeek R1 and Llama 4 Maverick.

DeepSeek

DeepSeek R1

A premier reasoning model employing large-scale reinforcement learning. Displays specialized math, coding, and logical validation capabilities comparable to OpenAI's o1.

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Meta

Llama 4 Maverick

Meta's next-generation open weights model. Delivers premium agentic capabilities, reasoning, and tool call compliance for local or self-hosted enterprise stacks.

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Technical Specifications

SpecificationDeepSeek R1Llama 4 Maverick
ProviderDeepSeekMeta
Context Window163,840 tokens1,048,576 tokens
Agent Suitability78/10089/100
Time to First Token (TTFT)1800 ms300 ms
Deployment Modelmanaged apiself hostable
Production Stabilitystablestable
API AvailableYesYes
Released Date2025-01-202026-05-25

API Pricing Comparison

Input Price per Million Tokens

DeepSeek R1

$0.70

Llama 4 Maverick

$0.15

Output Price per Million Tokens

DeepSeek R1

$2.50

Llama 4 Maverick

$0.60

Want to test both models live?

Run side-by-side prompt prompts in our dynamic Sandbox. Check execution speeds, latency metrics, and compute actual costs in real-time.

Benchmark Performance Metrics

Scores show the raw performance percentages verified across key evaluation suites. Higher bars indicate superior accuracy and capability in that domain.

MMLUGeneral knowledge & multi-task understanding
9080.0%vs9150.0%
DeepSeek R1
Llama 4 Maverick
HumanEvalPython coding & logic synthesis
9280.0%vs9380.0%
DeepSeek R1
Llama 4 Maverick
MATHComplex mathematical problem solving
9310.0%vs8920.0%
DeepSeek R1
Llama 4 Maverick
GPQAGraduate-level expert reasoning
6210.0%vs7640.0%
DeepSeek R1
Llama 4 Maverick
HellaSwagCommonsense reasoning and inference
9050.0%vs9720.0%
DeepSeek R1
Llama 4 Maverick
MT-BenchMulti-turn conversation flow quality
935.0%vs940.0%
DeepSeek R1
Llama 4 Maverick

DeepSeek R1 Quirks & Gotchas

  • โ–ธReasoning model โ€” not designed for high-frequency tool calling
  • โ–ธPair with a smaller model (V4 Flash) for routing and use R1 for complex reasoning only

Llama 4 Maverick Quirks & Gotchas

  • โ–ธSelf-hostable via Ollama/Docker โ€” ideal for on-premise deployments
  • โ–ธRequires specific system prompt for optimal function calling reliability