GPT-4o mini vs Claude 3.5 Sonnet
Compare pricing, context windows, and strengths for GPT-4o mini by OpenAI and Claude 3.5 Sonnet by Anthropic - and see how to put either to work in Appaca.
GPT-4o mini
A fast, affordable small model for focused tasks with multimodal input support and strong performance for classification, extraction, translation, and lightweight reasoning.
View GPT-4o miniClaude 3.5 Sonnet
A fast, mid-tier model offering top-tier intelligence, strong reasoning, and advanced coding/vision capabilities at low cost.
View Claude 3.5 SonnetGPT-4o mini vs Claude 3.5 Sonnet at a glance
Specs and pricing side by side, from the Appaca AI models directory.
| Spec | GPT-4o mini | Claude 3.5 Sonnet |
|---|---|---|
| Provider | OpenAI | Anthropic |
| Model type | Text | Text |
| Context window | 128K tokens | 200K tokens |
| Input price | $0.15 / 1M tokens | $3 / 1M tokens |
| Output price | $0.6 / 1M tokens | $15 / 1M tokens |
| Status | Current | Superseded by Claude 4.5 Sonnet |
How GPT-4o mini and Claude 3.5 Sonnet differ
What the numbers mean in practice when choosing between GPT-4o mini and Claude 3.5 Sonnet.
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GPT-4o mini is 95% cheaper on input tokens ($0.15 vs $3 per million), which adds up quickly in document-heavy workloads.
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GPT-4o mini is 96% cheaper on output tokens ($0.6 vs $15 per million) - the bigger factor for tools that generate long documents.
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Claude 3.5 Sonnet's 200K tokens context window is roughly 1.6x larger than GPT-4o mini's 128K tokens, so it can work across bigger codebases, contracts, or archives in one pass.
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Claude 3.5 Sonnet has been superseded by Claude 4.5 Sonnet - for new builds, consider the newer model first.
Strengths side by side
Where each model shines, according to benchmarks and provider positioning.
GPT-4o mini
1. Fast, cost-efficient performance
- Designed for low-latency, high-throughput workloads.
- Ideal for production systems where speed and budget matter more than deep reasoning power.
2. Great for focused NLP tasks
- Excels at classification, tagging, entity extraction, rewriting, paraphrasing, and SEO tasks.
- Strong at translation and keyword generation due to efficient language understanding.
3. Multimodal input capable (text + image)
- Accepts images for lightweight visual analysis, categorization, or extraction.
- Outputs text only, ensuring deterministic and easily integrated responses.
4. Supports advanced developer features
- Structured Outputs for predictable schemas.
- Function calling for building tool-augmented agents.
- Fully compatible with Batch API for large-scale processing.
5. Easy to fine-tune
- One of the best OpenAI models for domain-specific fine-tuning.
- Allows organizations to compress larger models' behavior (like GPT-4o) into a smaller footprint.
6. Suitable for distillation workflows
- Can approximate GPT-4o or GPT-5 outputs using distillation, dramatically reducing cost.
- Enables scalable deployment for high-volume applications.
7. Large context window for its size
- 128K context supports multi-step tasks, multi-document inputs, and long-running conversations.
- Useful for agents that need memory across extended sessions.
8. Reliable for commercial production
- Stable, predictable, and low-variance outputs make it ideal for automation and enterprise stacks.
- Works well in synchronous or asynchronous pipelines.
Claude 3.5 Sonnet
1. Intelligence & Reasoning
- Outperforms previous Claude models and competitor LLMs across major benchmarks.
- Excels in graduate-level reasoning (GPQA), knowledge tasks (MMLU), and coding (HumanEval).
- Handles nuance, humor, and complex instructions with human-like clarity.
2. Speed & Efficiency
- Runs 2x faster than Claude 3 Opus, making it ideal for real-time and high-volume workflows.
- Cost-effective pricing: $3/M input tokens and $15/M output tokens.
- Supports a 200K token context window, enabling rich, long-form reasoning.
3. Coding Capabilities
- Solves significantly more coding and bug-fix tasks (64% vs Opus's 38% in internal evaluations).
- Can autonomously write, edit, and execute code when tool use is enabled.
- Strong at translating and modernizing legacy codebases.
4. Vision Strength
- Best vision model in the Claude family, surpassing Opus on vision benchmarks.
- Excellent at interpreting charts, graphs, and imperfect images.
- Reliable text extraction from low-quality visuals for retail, logistics, finance, etc.
5. Agentic Workflows
- Highly capable for multi-step task orchestration.
- Performs well as the engine for agents requiring reasoning, planning, and tool-calling abilities.
6. Content Quality
- Produces natural, relatable writing with improved tone, style, and context awareness.
- Strong at long-form content creation and editing.
7. Safety & Reliability
- Rated ASL-2, meeting Anthropic's safety standards.
- Undergoes extensive red-teaming and external evaluation (UK AISI & US AISI).
- Not trained on user data without explicit permission.
Use GPT-4o mini or Claude 3.5 Sonnet - or both
Appaca is the AI workspace for operators. Build internal tools and AI co-workers powered by GPT-4o mini or Claude 3.5 Sonnet - connected to your real data and ready for your whole team. No code, no deployment.
Describe it, and it's built
Tell the Appaca agent the internal tool you need and it builds a working app powered by GPT-4o mini or Claude 3.5 Sonnet. No code, no API keys, no deployment.
Switch models without rebuilding
Start on GPT-4o mini, test the same tool on Claude 3.5 Sonnet, and keep whichever performs better - the rest of your app stays exactly as it is.
Automated for the whole team
Schedule tools to run on autopilot - daily digests, weekly reports, real-time triggers - and share them with your whole team from one workspace.
Describe it, and it's built
Tell the Appaca agent what your team needs and it builds a working app powered by GPT-4o mini or Claude 3.5 Sonnet - connected to the tools you already use.







Related comparisons
See how GPT-4o mini and Claude 3.5 Sonnet stack up against other models in the directory.
FAQs
GPT-4o mini is generally cheaper: $0.15 input / $0.6 output per million tokens, versus $3 / $15 for Claude 3.5 Sonnet. Actual cost depends on how many tokens your workload reads and writes.
Claude 3.5 Sonnet has the larger context window at 200K tokens, compared to 128K tokens for GPT-4o mini. A larger window means the model can consider more text at once - useful for long contracts, codebases, or months of records.
It depends on the job. Compare the pricing, context window, and strengths above against your workload - and remember the choice isn't permanent. In Appaca you can build a tool on GPT-4o mini, test the same tool on Claude 3.5 Sonnet, and switch at any time without rebuilding anything.
Yes. Appaca is a no-code AI workspace: describe the internal tool your team needs and the Appaca agent builds it as a working app powered by GPT-4o mini, Claude 3.5 Sonnet, or any other model in the directory - with a built-in database, team access, and integrations. No API keys to wire up and nothing to deploy.
Build AI tools with GPT-4o mini or Claude 3.5 Sonnet
Describe the tool your team needs and get a working app powered by the model you choose - with a built-in database, team access, and integrations. No code, no deployment.