MiniMax M2.7

MiniMax-M2.7

MiniMax M2.7 is presented as a productivity and engineering model for autonomous workflows, multi-agent collaboration, live debugging, and document-heavy work. Public descriptions mention root-cause analysis, financial modeling, and full Word/Excel/PowerPoint-style document generation. It should be described as an applied work model, not just a chat or writing model.

Context Window

204.8K tokens

Maximum Output

131.1K tokens

Release Date

Mar 18, 2026

Modalities

MiniMax M2.7 Pricing

Input PriceOutput PriceCache Read
$0.3/M$1.2/M$0.06/M

MiniMax M2.7 API Capabilities

Reasoning

Supported

Tool calling

Supported

Temperature parameter

Supported

Attachments

Not supported

Knowledge Base

—

Endpoint Protocols

Completions APIMessages APIgemini

MiniMax M2.7 Model Highlights

MiniMax M2.7 is a text reasoning model focused on real-world software engineering, coordinated agent work and editable professional deliverables.

System-Level Engineering

Correlates logs, monitoring metrics, traces and database evidence to diagnose defects and make system-level engineering decisions.

Coordinated Agent Teams

Supports agent teams with stable roles and autonomous decisions for dividing and coordinating complex multi-part work.

Professional Document Editing

Performs high-fidelity, multi-round work on Word, Excel and presentation materials while preserving editable output.

MiniMax M2.7 Use Cases

MiniMax M2.7 fits production incident investigation, collaborative engineering projects and multi-round preparation of professional office materials.

Production Incident Response

Review logs, traces, metrics and database state to identify a likely root cause and prepare a scoped recovery or remediation plan.

Multi-Agent Engineering

Assign analysis, implementation and verification to coordinated agent roles, then combine their outputs into one engineering result.

Editable Office Deliverables

Draft and repeatedly refine reports, spreadsheets or presentations while preserving structure and producing material suitable for further editing.

How to Use MiniMax M2.7 via the TokenHub API

Create API key
import OpenAI from "openai"

const client = new OpenAI({
  apiKey: process.env.TOKENHUB_API_KEY,
  baseURL: "https://us-api.tokenhub.com/v1",
})

const result = await client.chat.completions.create({})
console.log(result.choices[0]?.message?.content)

MiniMax M2.7 Benchmarks

MiniMax-M2.7

Index score
Artificial Analysis Intelligence IndexArtificial Analysis broad capability aggregate38.1
Artificial Analysis Coding IndexArtificial Analysis software task aggregate41.9
Knowledge & Reasoning
GPQAAdvanced science problem solving87.4%
HLEBroad expert-level exam set28.1%
Coding & Engineering
SciCodeScientific coding challenges47%
Terminal-Bench HardHard terminal task execution39.4%
Instruction Following & Agent Tasks
IFBenchPrompt constraint adherence75.7%
AA-LCRLong-context reasoning68.7%
τ²-BenchAgent workflow tasks84.8%

Metrics sourced from Artificial Analysis

Media and Discussions

Selected public videos and posts related to this model.

X (Twitter)

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Reddit

YouTube

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MiniMax M2.7 FAQ

MiniMax M2.7: capabilities, use cases, limits, and TokenHub guidance.

What does MiniMax M2.7 focus on?+

MiniMax M2.7 is a MiniMax model for real-world software engineering and agent delivery.

Which projects fit MiniMax M2.7?+

Best for iterative engineering delivery, debugging and refactoring and repository-scale development, especially when long-horizon task completion is the priority.

What is special about MiniMax M2.7?+

Key strength: strong real-world engineering, debugging, and end-to-end delivery.

When is another model better?+

Long autonomous runs can consume substantial time and tokens. For multimodal input, consider MiniMax M3.

How do I avoid ID mistakes?+

Use the exact ID shown by TokenHub; follow your account docs and verify current features.

Ready to use MiniMax M2.7?

Use one API key to access MiniMax M2.7 and more AI models through TokenHub.

Create API key