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Model comparison

Mistral Small 4 vs Celeris-1 Magnus

Compare Mistral Small 4 and Celeris-1 Magnus using the same provider-sourced text & reasoning rubric. No mystery score and no invented benchmark ranking.

Facts checked September 4, 2026

Estimate your cost

Set your usage. Your estimate updates as you type.

Example: 6,000 input tokens for 10 pages, plus a 500-token summary. Page lengths vary; adjust the numbers below.

One run sends your input to the model once and receives an answer. Tokens are pieces of text: input is what you send, output is the answer you receive.

Advanced options
How this estimate works

Estimates exclude taxes, tools, cache storage/writes, free allowances and custom discounts. Image estimates cover output only, not prompt or reference-image charges. Quality modes differ by model. Unlisted settings are not treated as free.

Estimate your cost
ModelEstimated total (USD)
Mistral Small 4Mistral AI$0.0012
Celeris-1 MagnusCelerisNo reviewed rate

Quick take

Mistral Small 4

Mistral's lower-cost open model that combines normal instruction following, reasoning, coding, vision, and agent tools in one endpoint.

Best for

  • Cost-sensitive production assistants
  • Coding and tool use on one flexible model
  • Self-hosted text-and-image applications

Watch out for

Sparse activation lowers inference work but does not make the full 119B checkpoint small. Size hardware around the actual quantization and context you plan to serve.

Celeris-1 Magnus

Celeris' agent-focused diffusion language model for fast reasoning, tool loops, structured actions, and OpenAI-compatible integration.

Best for

  • Low-latency tool-using agents
  • Structured extraction and action workflows
  • Teams migrating an OpenAI-compatible client

Watch out for

The public price page labels Celeris-1 rather than Magnus, and the service remains early. Confirm Magnus billing, capacity, support, data retention, and a production SLA directly.

Compare the published facts

Mistral Small 4 vs Celeris-1 Magnus

Values use each provider's own published units and limits. A blank means the provider did not publish a directly comparable value in the sources reviewed.

Text & reasoningMistral Small 4Celeris-1 Magnus
Context windowMaximum combined prompt and working context documented by the provider.256K tokens combined131,072 tokens combined
Maximum outputProvider-published response limit, where available.Not separately publishedAny positive limit within the combined context
Knowledge cutoffLatest reliable knowledge date explicitly published by the model provider. Search and connected tools can retrieve newer information but do not change the model's built-in cutoff.Not publishedNot published
Input priceCurrent standard list price per million input tokens unless noted.$0.15 / 1M$0.20 / 1M listed family rate; verify Magnus
Output priceCurrent standard list price per million output tokens unless noted.$0.60 / 1M$0.70 / 1M listed family rate; verify Magnus
InputsMedia types accepted by the listed model endpoint.Text, imageText; image content parts supported by the API
Tools & agentsSelected native tools and agent-building capabilities, not an exhaustive list.Functions, agents, built-in tools, structured and predicted outputsTools, JSON schema, reasoning low/medium/xhigh

How to choose

Compare the job, not the hype.

Start with the job you need to complete, then validate cost, access, and policy details on your exact provider route.

Mistral Small 4

Mistral's commercial terms exclude model training by default except when a customer opts in or uses designated Labs or preview models. Self-hosting keeps inference data under the operator's controls; hosted API retention is generally 30 days unless zero data retention is enabled.

Celeris-1 Magnus

Celeris says API inputs and outputs are processed to provide the service and monitor abuse and reliability. Its public notice does not give one fixed content-retention period or no-training promise; enterprise VPC options are available.

Frequently asked questions

Mistral Small 4 vs Celeris-1 Magnus FAQ

What is the main difference between Mistral Small 4 and Celeris-1 Magnus?

Mistral Small 4: Mistral's lower-cost open model that combines normal instruction following, reasoning, coding, vision, and agent tools in one endpoint. Celeris-1 Magnus: Celeris' agent-focused diffusion language model for fast reasoning, tool loops, structured actions, and OpenAI-compatible integration.

Should I choose Mistral Small 4 or Celeris-1 Magnus?

Consider Mistral Small 4 when your priority is Cost-sensitive production assistants. Consider Celeris-1 Magnus when your priority is Low-latency tool-using agents. Test both with your own data and provider route before committing.

Is this Mistral Small 4 vs Celeris-1 Magnus comparison based on Cody benchmarks?

No. This comparison aligns provider-published facts for the Text & reasoning category. It does not claim a universal winner or combine incompatible third-party benchmark scores.