Decision Signal
HealthyCurrent PR review margin is 75.7%. Use this to compare modeled review-agent cost with your per-review package price or internal chargeback.
Step 1 Provider and Model
iSwitch model assumptions using prices from the selected snapshot.Step 2 Quick Mode
iUse plain-language assumptions first. Open Advanced assumptions only if needed.Pull-request review workflows where diff size, review passes, repository context, and reranking determine cost per review.
- Need help estimating inputs? Read token sizing and reranking basics.
Optional Advanced assumptions
iTune retrieval, reranking, embeddings, vector, caching, and infra.Show advanced inputs
Only adjust these once your Quick Mode assumptions feel realistic.
Scenario actions
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After you click Save and track, we carry this exact calculator state into the tracked-scenarios page so you can sign in and confirm the save.
We save your assumptions and the pricing snapshot used for this result.
When a newer pricing snapshot lands, we recompute the same scenario, show what changed, and email you if the latest result moved.
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Cost per PR review
$0.1215Gross margin
75.7%Estimated monthly review AI cost
$109.39Estimated monthly review gross profit
$340.61Top Cost Drivers
iMost sensitive variables when each is moved up by 10%.Totals
iSummary metrics for monthly unit economics and margin.| Cost per model request | $0.04052 |
| Cost per PR review | $0.1215 |
| Gross margin % | 75.7% |
| Break-even price | $0.1215 |
Component Breakdown (USD/PR review)
iEach cost component is computed independently and summed.Largest cost block: reranking, not generation.
| GenerationiModel input/output token spend for requests. | $0.053 |
| RetrievaliExtra model input spend from retrieved context chunks. | $0.0109 |
| RerankingiReranker cost based on docs scored per request. | $0.072 |
| Embeddings IngestioniAmortized per-user share of the fixed monthly corpus embedding refresh cost. | $0 |
| Vector DbiVector database query cost across all requests. | $0.0001 |
| CacheiSavings from cache hits. Negative means lower total cost. | $-0.0166 |
| InfraiNon-model infra overhead per request. | $0.0021 |
Sensitivity RankingiChange in total cost when one variable is increased by 10%.
| Variable | Delta cost % |
|---|---|
| Model requests / PR reviewiUser activity level per month. | 10.0% |
| Rerank DocsiDocs reranked per request. | 5.2% |
| Output TokensiGenerated tokens per request. | 2.1% |
| Input TokensiPrompt-side tokens per request. | 1.7% |
| Cache Hit RateiFraction of requests served by cache. | -1.4% |
| Retrieved ChunksiRetrieved chunk count per request. | 0.8% |
| Tokens Per ChunkiAverage chunk size in tokens. | 0.8% |
| Vector Queries Per RequestiVector query count per request. | 0.0% |
| Monthly PR reviewsiActive-user estimate used to amortize fixed monthly embedding refresh. | -0.0% |
Assumptions and Units
iExplicit assumptions to keep outputs reproducible and auditable.- CurrencyUSD
- Token unittoken
- Pricing snapshot2026-07-24
- Selected model rowOpenAI/GPT-5.3 Codex
- Volume basisBusiness totals and fixed monthly terms use monthly PR reviews as the denominator
- Embedding refreshAmortized per PR review from the fixed monthly repo/index refresh term
- Cache componentNegative value means cost savings
Recommended Next Step
iUse these links to lower top cost drivers without guessing.Pressure-test the biggest review cost driver first. Compare coding-plan and model-routing choices only after review volume, diff context, and repo refresh assumptions are explicit.
Compare the buying lane next
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View Infra RecommendationsSources and Snapshot
iPricing comes from the current dated snapshot.Active Pricing Row
Selected model
OpenAI / GPT-5.3 Codex
- Input tokens$1.75 / 1M
- Output tokens$14 / 1M
Shared retrieval defaults
- Embedding input$0.02 / 1M
- Rerank docs$1 / 1K
- Snapshot date: 2026-07-24
- Source links and update notes: Pricing Snapshot Reference