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Real head-to-head · same prompt, one shot

Fusion vs DeepSeek V4 Flash

Multi-model panel — Fable 5 + GPT-5.5, ensembled. Beats Fable 5 at half the price. vs DeepSeek's cheap tier, retrained for agents — same size, sharper loops.

Fusion · contextVaries (per-panel)
DeepSeek V4 Flash · context1M tokens
Fusion · priceOpenRouter Fusion API pricing
DeepSeek V4 Flash · priceAPI · cheap tier
Fusion · vendorOpenRouter
DeepSeek V4 Flash · vendorDeepSeek

What I tested — same prompt, two models

I run the same fixed prompt set through every new model the day it drops — same string, one shot, single HTML file out — and I score the result 0–10 on whether it ran, how close it hit the brief, and how good it looked. Below is what came out when I gave the exact same prompts to Fusion and DeepSeek V4 Flash, side by side, on 47 shared tasks inside the Agent Operating System.

Both models were given identical prompts inside the Agent Operating System — no help, no iteration, no "best of N" tricks. I run each prompt once, save the HTML file the model produces, and score it 0–10 on whether it ran, how close it hit the brief, and how good it looked. The scoring is mine. The verdicts below are pulled from my source comparison guides at agentos.guide where I publish every score and the reasoning behind it.

Fusion · Dispatched from Agent OS for research-heavy prompts where ensemble accuracy outweighs single-model speed.

DeepSeek V4 Flash · Wired into the Agent OS three ways: a `deepseek` Hermes profile, the DeepSeek Coder tab (official API, V4 Flash 0731 / V4 Pro picker, live preview), and the OpenCode model dropdown. Benched on all 50 GoldieBench tasks via api.deepseek.com — the endpoint the 0731 beta shipped on — with the skill-infused threejs-game-director prompt on game tasks and a model-driven fix round on any build that failed the render check.

Side-by-side on 50 shared tasks

Click any cell to play that model's actual one-shot attempt. Medals are derived from my 0–10 scores per task (highest = 🥇, second = 🥈, third = 🥉).

Task ↓
Fusion
DeepSeek V4 Flash
Game
🥉Fusion on Arcade
DeepSeek V4 Flash on Arcade
Game
🥇Fusion on Crypt
DeepSeek V4 Flash on Crypt
Game
🥇Fusion on Dogfight
DeepSeek V4 Flash on Dogfight
Game
🥈Fusion on Doom
DeepSeek V4 Flash on Doom
🥇Fusion on Dragonflight
DeepSeek V4 Flash on Dragonflight
🥇Fusion on Dragonrealm
DeepSeek V4 Flash on Dragonrealm
Game
🥇Fusion on Flightsim
DeepSeek V4 Flash on Flightsim
Game
🥇Fusion on Game
DeepSeek V4 Flash on Game
Game
🥇Fusion on Gtadrive
DeepSeek V4 Flash on Gtadrive
Game
🥇Fusion on Gtafoot
DeepSeek V4 Flash on Gtafoot
🥇Fusion on Neonblaster
DeepSeek V4 Flash on Neonblaster
Game
Fusion on Neoncity
DeepSeek V4 Flash on Neoncity
Game
Fusion on Neonracer
DeepSeek V4 Flash on Neonracer
🥇Fusion on Nordiccrypt
DeepSeek V4 Flash on Nordiccrypt
Game
Fusion on Outrun
DeepSeek V4 Flash on Outrun
Game
🥇Fusion on Parachute
DeepSeek V4 Flash on Parachute
Game
Fusion on Pool
DeepSeek V4 Flash on Pool
Game
🥇Fusion on Racing
DeepSeek V4 Flash on Racing
Game
🥈Fusion on Raycaster
DeepSeek V4 Flash on Raycaster
Game
Fusion on Rpg
DeepSeek V4 Flash on Rpg
Game
🥇Fusion on Skyrim
DeepSeek V4 Flash on Skyrim
🥇Fusion on Twilightvale
DeepSeek V4 Flash on Twilightvale
Game
🥇Fusion on Voxelcraft
DeepSeek V4 Flash on Voxelcraft
Page
Fusion on Aipbpromo
DeepSeek V4 Flash on Aipbpromo

Strengths & weaknesses I logged

Fusion

Strengths

  • Premium Fusion panel scored 69.0% on DRACO deep-research benchmark — beats solo Fable 5 by +3.7 points
  • Budget panel ties Fable 5 at ~64.7% for roughly half the cost
  • Vendor-agnostic — model panel can swap as new frontier releases land

Trade-offs

  • Ensemble latency higher than any single model (panel calls run in parallel but the slowest still gates the response)
  • No per-task goldiebench scoring yet — bench rank pending

DeepSeek V4 Flash

Strengths

  • 50/50 one-shot builds returned complete, valid, closing HTML — zero truncations
  • 42/50 rendered clean first time; all 8 dark builds were repaired by the model itself in one fix round
  • 1M-token context on the cheap tier — whole codebases fit in a single call

Trade-offs

  • Unranked — the 50 builds are on the bench but not yet scored by the Opus vision judge
  • Reasons at length before writing (a full 3D game build ran ~4-8 minutes), so it is not a fast-draft model
  • 8 of 50 first-pass builds rendered black or near-black before the fix round

Pricing & context — the spec sheet

Spec Fusion DeepSeek V4 Flash
VendorOpenRouterDeepSeek
Context windowVaries — depends on which panel models are dispatched1,000,000-token context window
PriceOpenRouter Fusion API pricingAPI · cheap tier
Pricing detailOpenRouter's Fusion API dispatches a single prompt to multiple frontier models and ensembles the answers. Premium panel: Fable 5 + GPT-5.5. Budget panel: cheaper open-weights models. Roughly half the per-token cost of a Fable 5 solo call.Benched on the DeepSeek-V4-Flash-0731 public beta, launched 2026-07-31 on DeepSeek's official API. DeepSeek describe it as a major upgrade to agent capabilities whose benchmark scores now surpass their previous V4-Pro-Preview, using the exact same model architecture and size as the preview — the gain is post-training, not scale. Natively supports the Responses API format and is adapted for Codex-style coding loops. Benched against api.deepseek.com directly because third-party routes list "v4-flash" undated and may still serve the older preview build.
Release2026-06-142026-07
Bench coverage47/47 scored · avg 8.59/100/50 scored · avg —

The verdict — which should you pick?

Not enough scored shared tasks yet for a head-to-head average. The live demos for both are on the matrix above — play them and form your own opinion.

If you only run one of these inside your stack, the head-to-head average above is the call. If you can run both, my honest play is to wire Fusion and DeepSeek V4 Flash both into the Agent Operating System and dispatch each from the kanban by task type — deep-research workflows where panel consensus beats single-model answers → Fusion, long agent loops and codex-style write-run-fix work, which is what the 0731 upgrade targets → DeepSeek V4 Flash. That's the same setup I run for the 4,000+ founders inside the AI Profit Boardroom.

FAQ — Fusion vs DeepSeek V4 Flash

Which is better, Fusion or DeepSeek V4 Flash?

On Goldie Bench, Fusion averages no scored verdicts yet across the shared tasks, with 21 gold, 3 silver, 3 bronze overall. DeepSeek V4 Flash averages no scored verdicts yet, with 0 gold, 0 silver, 0 bronze. Not enough scored shared tasks yet to call a winner.

How much does Fusion cost vs DeepSeek V4 Flash?

Fusion: OpenRouter's Fusion API dispatches a single prompt to multiple frontier models and ensembles the answers. Premium panel: Fable 5 + GPT-5.5. Budget panel: cheaper open-weights models. Roughly half the per-token cost of a Fable 5 solo call. DeepSeek V4 Flash: Benched on the DeepSeek-V4-Flash-0731 public beta, launched 2026-07-31 on DeepSeek's official API. DeepSeek describe it as a major upgrade to agent capabilities whose benchmark scores now surpass their previous V4-Pro-Preview, using the exact same model architecture and size as the preview — the gain is post-training, not scale. Natively supports the Responses API format and is adapted for Codex-style coding loops. Benched against api.deepseek.com directly because third-party routes list "v4-flash" undated and may still serve the older preview build.

What's the context window for Fusion vs DeepSeek V4 Flash?

Fusion has a Varies — depends on which panel models are dispatched context window. DeepSeek V4 Flash has a 1,000,000-token context window context window.

When should I pick Fusion over DeepSeek V4 Flash?

Pick Fusion for: Deep-research workflows where panel consensus beats single-model answers; Cost-sensitive operators who want Fable-5-class output at ~half the bill; Production agents that benefit from vendor-redundancy on every call. The trade-off is the weaknesses we logged on the bench: Ensemble latency higher than any single model (panel calls run in parallel but the slowest still gates the response); No per-task goldiebench scoring yet — bench rank pending.

When should I pick DeepSeek V4 Flash over Fusion?

Pick DeepSeek V4 Flash for: Long agent loops and Codex-style write-run-fix work, which is what the 0731 upgrade targets; Whole-repo or whole-document tasks that need the 1M context on a cheap tier; Volume build work where you would rather wait a few minutes than pay a flagship. The trade-off is the weaknesses we logged on the bench: Unranked — the 50 builds are on the bench but not yet scored by the Opus vision judge; Reasons at length before writing (a full 3D game build ran ~4-8 minutes), so it is not a fast-draft model; 8 of 50 first-pass builds rendered black or near-black before the fix round.

How does Goldie Bench score Fusion vs DeepSeek V4 Flash?

Every demo on this page was built by Julian Goldie inside the Agent Operating System — same fixed prompt for both models, one shot, single HTML file out. Each result gets a 0–10 score on whether it ran, how close it hit the brief, and how good it looked. The highest score on each task gets gold; second gets silver; third gets bronze. See methodology for full provenance.

The same stack Julian uses

Run this stack yourself.

Every demo on this bench was built inside the Agent Operating System — one prompt, one shot, single HTML file out. The Agent OS, the prompts, the templates, the weekly walkthroughs and 4,000+ founders shipping with it every day all live inside the AI Profit Boardroom.

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