โ€” LLM (OpenAI)

GPT-4

Last updated June 23, 2026 ยทReviewed by ToolForge Editorial

The model that started the generative AI boom โ€” still a workhorse in 2026.

โ˜… 4.6/5ยทProduction-readyยทReleased Mar 2023ยทAPI: $30/M output
From $20/mo Plus
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The original flagship โ€” still alive, no longer the king.

GPT-4 launched in March 2023 and became the most consequential AI model release in history. Three years later, it's been superseded by GPT-4o, o1, o3, and GPT-5 in OpenAI's lineup โ€” but GPT-4 is still relevant. It powers a massive installed base of production apps, costs less than newer models, and remains competitive on many tasks. If you're running a production system that works on GPT-4, there's no urgent reason to migrate.

Who it's for: Existing GPT-4 production systems, cost-sensitive developers, enterprises with stable integrations, anyone learning the OpenAI API on a budget.

Key features

8K / 32KContext variants

GPT-4 (8K context) and GPT-4-32K (32K context) are still available. The 32K version handles long documents but costs 2x more per token than 8K.

StableProduction-tested reliability

Three years of production use = best-understood model in the industry. Documentation, error patterns, and best practices are well-established.

$30/MCheaper than o-series

GPT-4 API: $30/M output tokens. Compare: GPT-4o ($10/M), o1 ($60/M), o3-mini ($4.40/M). For non-reasoning tasks, GPT-4 is often the cost-vs-quality sweet spot.

ToolsFunction calling + vision

Native function calling, JSON mode, vision input (gpt-4-vision), and the full OpenAI tools ecosystem (Assistants API, fine-tuning, evals).

Fine-tuneCustom training

Still supports fine-tuning (GPT-4 fine-tuning is more stable than 4o fine-tuning, which is still preview). Good for domain-specific models.

The honest take

โœ“ What works

  • Battle-tested in production by millions of developers โ€” known failure modes, robust tooling
  • Cheaper than o1/o3 on most reasoning-light tasks (summarization, classification, extraction, rewriting)
  • Still beats GPT-4o on certain creative writing and nuanced instruction-following tasks
  • Best fine-tuning stability in OpenAI's lineup โ€” fewer surprises than 4o fine-tunes
  • Microsoft Azure OpenAI Service hosts GPT-4 with enterprise compliance (HIPAA, SOC 2, FedRAMP)

โœ— What doesn't

  • Outperformed on benchmarks by GPT-4o (multimodal, faster, cheaper) and o1/o3 (reasoning, math, code)
  • 8K context is limiting in 2026 โ€” Claude (200K), Gemini (2M), and GPT-4.1 (1M) are vastly better for long docs
  • Slower inference than GPT-4o (3-5x on standard prompts) and 4o-mini (10x faster)
  • No native multimodal output (image gen) โ€” needs separate DALL-E 3 call
  • OpenAI has flagged GPT-4 for deprecation โ€” support guarantees ending 2027

Verdict

GPT-4 is the Honda Civic of LLMs โ€” not the fastest, not the flashiest, but reliable, well-understood, and still gets the job done in 2026. If your production system already runs on GPT-4 and works, there's no urgent reason to migrate. For new projects, start with GPT-4o or GPT-4o-mini. For reasoning-heavy work, use o1 or o3. GPT-4 is for legacy stability, not new builds.

๐Ÿ’ก Transparency: This review is editorially independent. We never accept payment for positive coverage. Full disclosure.

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