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  2. /Model
  3. /Google
  4. /gemini-3.8-flash
Google
Gemini 3.8 Flash
$ 
Access Google's Gemini 3.8 API through GPTProto for long-horizon coding, autonomous agents, and multimodal analysis. Use a 1M-token context window, 64K maximum output, three thinking levels, and 40% lower token pricing with one balance shared across 200+ models.

Modalities

Input: TextInput: ImageInput: VideoInput: DocumentInput: Audio
Output: Text

/

API Usage Examples
$ 
curl --request POST "https://gptproto.com/v1/chat/completions" \
  --header "Authorization: Bearer $GPTPROTO_API_KEY" \
  --header "Content-Type: application/json" \
  --data '{
    "model": "gemini-3.8-flash",
    "messages": [
      {
        "role": "user",
        "content": "Hello"
      }
    ]
  }'
Gemini 3.8 Flash pricing

Estimate a request with real work scenarios. GPTProto token pricing is 40% below official rates.

UsageQuantityRateCost
tokens
$0.9/1M$0.0013
tokens
$4.5/1M$0.0036
tokens
$0.6/1M$0.0018
tokens
$0.09/1M$0.0022
Cost per request$0.009
Requests
Top-up amount

Top-up $100 and you get:

1.

Top-up credits with permanent validity. You will receive a total of $100.00.

2.

Additional 40% model discount, saving $66.6649 versus direct official Google API calls.

Related Models
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Gemini 3.8 Flash
Current
$ 
byGoogle$0.9/M input$4.5/M output
Claude Fable 5.1
$ 
byClaude$9/M input$45/M output
Qwen3.8 Max 0902
$ 
byQwen$1.8/M input$5.4/M output
GLM 5.3 Flash
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byZ-AI1.31M context$0.15/M input$0.5/M output
DeepSeek v4 Flash Vision Exp
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byDeepSeek1.05M context$0.44/M input$1.32/M output
GLM 5.3
$ 
byZ-AI1.31M context$1.26/M input$3.96/M output
Gemini 3.7 Flash
$ 
byGoogle1.05M context$0.9/M input$4.5/M output
Grok 4.6
$ 
byGrok500K context$1.2/M input$3.6/M output
Qwen3.8 Max
$ 
byQwen1M context$1.8/M input$5.4/M output
Claude Opus 5
$ 
byClaude1M context$4.5/M input$22.5/M output
Gemini 3.6 Flash
$ 
byGoogle1.05M context$0.9/M input$4.5/M output
Gemini 3.5 Flash Lite
$ 
byGoogle1.05M context$0.18/M input$1.5/M output
Kimi K3
$ 
byMoonshotAI1.05M context$2.7/M input$13.5/M output
GPT 5.6 Luna
$ 
byOpenAI1.05M context$0.16/M input$0.96/M output
GPT 5.6 Terra
$ 
byOpenAI1.05M context$1.6/M input$9.6/M output
GPT 5.6 Sol
$ 
byOpenAI1.05M context$3.2/M input$16/M output
Grok 4.5
$ 
byGrok500K context$1.2/M input$3.6/M output
Claude Sonnet 5
$ 
byClaude1M context$1.8/M input$9/M output
MiniMax M3
$ 
byMiniMax1.05M context$0.48/M input$0.96/M output
GLM 5.2
$ 
byZ-AI1.05M context$1.26/M input$3.96/M output
Qwen3.7 Max
$ 
byQwen1M context$0.36/M input$1.44/M output
Gemini 3.5 Flash
$ 
byGoogle1.05M context$0.9/M input$5.4/M output
DeepSeek v4 Flash
$ 
byDeepSeek1.05M context$0.44/M input$1.32/M output
DeepSeek v4 Pro
$ 
byDeepSeek1.05M context$1.32/M input$3.96/M output
Grok 4.3
$ 
byGrok1M context$0.75/M input$1.5/M output
Kimi K2.6
$ 
byMoonshotAI262K context$0.855/M input$3.6/M output
Gemini 3.1 Flash Lite Preview
$ 
byGoogle1.05M context$0.15/M input$0.9/M output
MiniMax M2.5
$ 
byMiniMax205K context$0.24/M input$0.96/M output
Gemini 3.1 Pro Preview
$ 
byGoogle1.05M context$1.2/M input$7.2/M output
Kimi K2.5
$ 
byMoonshotAI262K context$0.54/M input$2.7/M output
Doubao Seed 1.6 Thinking (Build 250715)
$ 
byBytedance262K context$0.0971/M input$0.9714/M output
Doubao Seed 1.6 Thinking (Build 250615)
$ 
byBytedance262K context$0.0971/M input$0.9714/M output
Doubao Seed 1.6 Flash (Build 250615)
$ 
byBytedance262K context$0.0182/M input$0.1821/M output
ModelInput → Output
Gemini 3.8 FlashCurrent
$ 
—$0.90 / $4.50 per 1M$0.60 / $0.09 per 1M
Input: TextInput: ImageInput: VideoInput: DocumentInput: Audio
Output: Text
Claude Fable 5.1
$ 
—$9.00 / $45.00 per 1M$11.25 / $0.23 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Qwen3.8 Max 0902
$ 
—$1.80 / $5.40 per 1M$2.25 / $0.23 per 1M
Input: TextInput: ImageInput: VideoInput: DocumentInput: Audio
Output: Text
GLM 5.3 Flash
$ 
—1.31M$0.15 / $0.50 per 1M— / $0.03 per 1M
Input: TextInput: ImageInput: VideoInput: Document
Output: Text
DeepSeek v4 Flash Vision Exp
$ 
—1.05M$0.44 / $1.32 per 1M— / $0.01 per 1M
Input: TextInput: Image
Output: Text
GLM 5.3
$ 
1.31M$1.26 / $3.96 per 1M— / $0.23 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Gemini 3.7 Flash
$ 
1.05M$0.90 / $4.50 per 1M$0.60 / $0.09 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Grok 4.6
$ 
500K$1.20 / $3.60 per 1M— / $0.30 per 1M
Input: TextInput: Image
Output: Text
Qwen3.8 Max
$ 
1M$1.80 / $5.40 per 1M$2.25 / $0.23 per 1M
Input: TextInput: ImageInput: VideoInput: Document
Output: Text
Claude Opus 5
$ 
1M$4.50 / $22.50 per 1M$5.63 / $0.45 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Gemini 3.6 Flash
$ 
1.05M$0.90 / $4.50 per 1M$0.60 / $0.09 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Gemini 3.5 Flash Lite
$ 
1.05M$0.18 / $1.50 per 1M$0.60 / $0.02 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Kimi K3
$ 
1.05M$2.70 / $13.50 per 1M$0.27 / $0.27 per 1M
Input: TextInput: ImageInput: Document
Output: Text
GPT 5.6 Luna
$ 
1.05M$0.16 / $0.96 per 1M$0.20 / $0.02 per 1M
Input: TextInput: ImageInput: Document
Output: Text
GPT 5.6 Terra
$ 
1.05M$1.60 / $9.60 per 1M$2.00 / $0.16 per 1M
Input: TextInput: ImageInput: Document
Output: Text
GPT 5.6 Sol
$ 
1.05M$3.20 / $16.00 per 1M$4.00 / $0.32 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Grok 4.5
$ 
500K$1.20 / $3.60 per 1M$0.30 / $0.30 per 1M
Input: TextInput: Image
Output: Text
Claude Sonnet 5
$ 
1M$1.80 / $9.00 per 1M$2.25 / $0.18 per 1M
Input: TextInput: Document
Output: Text
MiniMax M3
$ 
1.05M$0.48 / $0.96 per 1M$0.10 / $0.10 per 1M
Input: TextInput: ImageInput: Document
Output: Text
GLM 5.2
$ 
1.05M$1.26 / $3.96 per 1M$0.23 / $0.23 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Qwen3.7 Max
$ 
1M$0.36 / $1.44 per 1M$0.07 / $0.07 per 1M
Input: TextInput: Document
Output: Text
Gemini 3.5 Flash
$ 
1.05M$0.90 / $5.40 per 1M$0.60 / $0.09 per 1M
Input: TextInput: ImageInput: Document
Output: Text
DeepSeek v4 Flash
$ 
—1.05M$0.44 / $1.32 per 1M— / $0.01 per 1M
Input: Text
Output: Text
DeepSeek v4 Pro
$ 
—1.05M$1.32 / $3.96 per 1M— / $0.04 per 1M
Input: Text
Output: Text
Grok 4.3
$ 
1M$0.75 / $1.50 per 1M$0.12 / $0.12 per 1M
Input: TextInput: Image
Output: Text
Kimi K2.6
$ 
262K$0.85 / $3.60 per 1M$0.14 / $0.14 per 1M
Input: TextInput: Document
Output: Text
Gemini 3.1 Flash Lite Preview
$ 
1.05M$0.15 / $0.90 per 1M$0.60 / $0.01 per 1M
Input: TextInput: ImageInput: Document
Output: Text
MiniMax M2.5
$ 
205K$0.24 / $0.96 per 1M$0.30 / $0.02 per 1M
Input: TextInput: Document
Output: Text
Gemini 3.1 Pro Preview
$ 
1.05M$1.20 / $7.20 per 1M$2.70 / $0.12 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Kimi K2.5
$ 
262K$0.54 / $2.70 per 1M$0.09 / $0.09 per 1M
Input: TextInput: Document
Output: Text
Doubao Seed 1.6 Thinking (Build 250715)
$ 
262K$0.10 / $0.97 per 1M—
Input: TextInput: Image
Output: Text
Doubao Seed 1.6 Thinking (Build 250615)
$ 
262K$0.10 / $0.97 per 1M—
Input: TextInput: Image
Output: Text
Doubao Seed 1.6 Flash (Build 250615)
$ 
262K$0.02 / $0.18 per 1M—
Input: TextInput: Image
Output: Text

Gemini 3.8 API for Coding and Long-Horizon Agents

Run Gemini 3.8 Flash through GPTProto for multi-file software work, iterative tool use, and mixed-media analysis. The model accepts text, images, video, audio, and PDFs while returning up to 65,536 text tokens.

1M-Token Multimodal Context

Analyze text, images, video, audio, and PDFs within a 1,048,576-token input window. Responses are text-only, with a maximum output of 65,536 tokens.

Long-Horizon Coding Gains

Use Gemini 3.8 Flash for multi-file refactoring and terminal-driven work. Google reports 90.8% on Terminal-Bench 2.1, compared with 81.6% for Gemini 3.7 Flash.

Adjustable Thinking Levels

Set low, medium, or high thinking effort to balance latency, token use, and reasoning depth. Medium is the default; the minimal level is unsupported and returns an error.

Tools and Structured Output

Build agents with function calling, code execution, file search, Google Search grounding, URL context, caching, and structured output. Computer use is also supported in preview.

What Is the Gemini 3.8 API?

The Google Gemini 3.8 API provides programmatic access to Gemini 3.8 Flash, a generally available reasoning model released on September 2, 2026. Its official model ID is gemini-3.8-flash. Google positions it for long-horizon software engineering, autonomous agents, and complex enterprise workflows.

Gemini 3.8 is a multimodal-input, text-output model. A request can combine text, images, video, audio, or PDFs inside a 1,048,576-token input window; responses can contain up to 65,536 text tokens. Supported tools include function calling, code execution, file search, Google grounding, URL context, caching, structured output, and preview computer use. It does not generate images or audio and does not support the Live API.

On GPTProto, one balance and API key work across Gemini 3.8 Flash and 200+ other models, simplifying routing, fallback, and controlled A/B tests.

Specification Gemini 3.8 Flash
Provider Google
Release status Generally available (GA)
Release date September 2, 2026
Official model ID gemini-3.8-flash
Input types Text, image, video, audio, PDF
Output type Text
Input context limit 1,048,576 tokens
Maximum output 65,536 tokens
Thinking levels Low, medium, high; medium by default
Core tools Function calling, code execution, file search, Search and Maps grounding, URL context
Other capabilities Caching, structured output, Batch API, Flex inference, Priority inference

Gemini 3.8 API Applications

Repository-scale coding: Provide source files, tests, issue context, and tools for multi-file debugging, refactoring, migration planning, and terminal-based validation.

Long-horizon agents: Use function calls for search, code execution, retrieval, and validation loops. Set explicit stopping conditions, tool permissions, and acceptance checks around the model.

Multimodal analysis: Combine PDFs, screenshots, charts, audio, and video with instructions for document review, meeting analysis, visual QA, or structured extraction.

Grounded workflows: Pair Google Search, Maps, file search, or URL context with structured output for research, internal knowledge tools, or location-aware analysis.

Gemini 3.8 Upgrades: Gemini 3.8 vs Gemini 3.7 Flash

Gemini 3.8 keeps the same 1M-token context, 64K output limit, input types, and introductory Google token rates as Gemini 3.7 Flash. Google reports stronger coding, multimodal, and agent results, but 3.8 can use more tokens as it reasons, calls tools, and verifies work.

Decision factor Gemini 3.8 Flash Gemini 3.7 Flash
Terminal-Bench 2.1 90.8% 81.6%
SWE-Bench Pro 61.6% 60.4%
SWE-Atlas 51.9% 48.0%
tau3-bench Banking 38.1% 30.9%
CharXiv multimodal 86.2% 84.5%
Humanity's Last Exam 45.4% 45.7%
Official introductory input/output rate $0.75 / $3.75 per 1M $0.75 / $3.75 per 1M
Best fit Difficult coding, agents, mixed-media reasoning Efficiency-first workflows with lower token use

These are Google-reported evaluations, not independent GPTProto tests. Gemini 3.8 improves most listed results but not every row, and equal token rates do not guarantee equal cost per completed task.

Migration Details to Check Before You Upgrade

Changing the model name is only the first migration step. Check these documented request rules:

  • Replace integer thinking_budget settings with thinking_level: low, medium, or high.

  • Do not send minimal; Gemini 3.8 Flash does not support it.

  • Remove frequency_penalty, presence_penalty, and candidate_count, which can return validation errors.

  • Do not rely on temperature, top_k, or top_p; Google documents these sampling fields as ignored for this model.

  • Match each function response to the preceding function call's ID, name, and execution count.

  • Remove prefilled model turns; do not end history with a model-role message.

For an OpenAI-compatible integration, keep the payload minimal and verify mapped fields in staging. Run a canary with the same prompts, tools, timeouts, and success criteria as the current model.

How to Evaluate Gemini 3.8 Against Other Models

Cross-vendor benchmarks rarely use identical tools or budgets. Test each candidate on the same task and measure completion rate, invalid tool calls, latency, output tokens, and cost per successful run.

Comparison query Most useful test
Claude Fable 5.1 vs Gemini 3.8 Multi-file implementation with tools, tests, and a fixed output budget
Gemini 3.8 vs GPT-5.6 Code generation, debugging, structured output, and recovery from a failed tool call
Gemini 3.8 vs Grok 4.6 Search-grounded research with source quality, latency, and cost measured separately
Qwen3.8-Max-0902vs Gemini 3.8 Long-context coding and enterprise document analysis on the same input set
Gemini 3.8 vs Kimi K3 Long agent loops with identical stopping rules and tool schemas
GLM-5.3 Flash vs Gemini 3.8 High-volume coding tasks, total tokens used, and cost per accepted result

Gemini 3.8 is a strong candidate when one request must combine mixed-media input with Google grounding or code tools. There is no universal winner without workload-level testing.

When Should You Choose Gemini 3.8?

Choose Gemini 3.8 Flash for mixed-media input, a 1M-token context, long tool loops, or stronger terminal behavior than Gemini 3.7. It fits coding agents, multimodal research, document analysis, and structured enterprise workflows.

Keep Gemini 3.7 or a lower-cost alternative when token efficiency matters more than extra verification. For simple extraction or chat, test low thinking effort and compare cost per successful task.

Gemini 3.8 API: Common Technical Questions

How much does the Gemini 3.8 API cost on GPTProto?

GPTProto lists Gemini 3.8 Flash at 40% below Google's current introductory token rates. Check the live panel for current rates, and measure cost per completed workflow because higher thinking effort can use more tokens.

How can I get a Gemini 3.8 API key and use the playground?

Create or sign in to GPTProto, generate a key in the dashboard, and select Gemini 3.8 Flash in the playground. Reuse the same key and balance for other supported models.

Is the Gemini 3.8 API open source?

No. Gemini 3.8 Flash is a proprietary Google model delivered as a hosted API. GPTProto access does not provide model weights or change Google's policies.

What inputs and outputs does Gemini 3.8 support?

It accepts text, images, video, audio, and PDFs and returns text. It does not generate images or audio, and the Live API is unsupported.

Is Gemini 3.8 suitable for coding and developer workflows?

Yes. Google reports gains over 3.7 Flash on Terminal-Bench 2.1, SWE-Bench Pro, and SWE-Atlas. Validate it on your repository, tools, tests, and token limits before switching.

Can Gemini 3.8 handle long tasks and autonomous agents?

Yes. It combines a 1,048,576-token input window with tools and adjustable thinking effort. Long tasks still need external timeouts, permissions, retry limits, checkpoints, and completion criteria.

Which thinking levels are available in the Gemini 3.8 API?

Low, medium, and high are supported; medium is the default. Minimal returns an error. Use low for latency-sensitive work and high when deeper reasoning justifies extra tokens.

Is Gemini 3.8 Flash the same as Gemini 3.8 Flash Cyber?

No. Gemini 3.8 Flash is generally available. Gemini 3.8 Flash Cyber is a separate security model restricted to trusted defenders through Google's Fairwind Program.

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Qwen3.8-Flash-Next vs GLM-5.3 Flash: Which Is Better for Coding, Agents, and Price?

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One API Key for Multiple AI Models: Tech Guide

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Manage your stack better with one API key for multiple AI models. Access GPT, Claude, and Gemini from one endpoint and cut your dev time. Try it now.

GPT Proto

Empowering AI Innovation with Global Scale and Stability:

With our flagship product GPT Proto, we offer a unified interface to access and combine APIs from the world's leading AI providers—spanning text, vision, speech, and beyond. We empower developers and enterprises to simplify integration and accelerate innovation without limits.

Global Infrastructure, Local Compliance:

To ensure enterprise-grade reliability and compliance, Talent Tech Global Limited operates specifically as our global Billing and Contracting Entity. Meanwhile, our core technical infrastructure and R&D teams are strategically distributed across global innovation hubs, including Silicon Valley, Singapore, and Hong Kong.

Built to Scale:

We understand that stability is paramount. Our platform is built on a robust, decentralized architecture supporting dynamic Auto-scaling. Whether you are running a pilot or handling millions of concurrent requests, our system expands instantly to meet demand—guaranteeing that your business never outgrows our infrastructure.

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Features

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  • Seedream 5.0 (Build 260128)
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Video

  • Wan 3.0
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