Agent SkillsMaxMiksa/Auto-Company › startup-business-models

startup-business-models

GitHub

提供初创企业营收模式选择、定价策略及单位经济模型(LTV/CAC等)的系统化工作流,涵盖SaaS、API等类型,支持AI计费约束分析与决策输出。

.claude/skills/startup-business-models/SKILL.md MaxMiksa/Auto-Company

Trigger Scenarios

评估或选择初创公司营收模式 设计定价策略与套餐层级 计算LTV、CAC、NRR等单位经济指标

Install

npx skills add MaxMiksa/Auto-Company --skill startup-business-models -g -y
More Options

Non-standard path

npx skills add https://github.com/MaxMiksa/Auto-Company/tree/main/.claude/skills/startup-business-models -g -y

Use without installing

npx skills use MaxMiksa/Auto-Company@startup-business-models

指定 Agent (Claude Code)

npx skills add MaxMiksa/Auto-Company --skill startup-business-models -a claude-code -g -y

安装 repo 全部 skill

npx skills add MaxMiksa/Auto-Company --all -g -y

预览 repo 内 skill

npx skills add MaxMiksa/Auto-Company --list

SKILL.md

Frontmatter
{
    "name": "startup-business-models",
    "description": "Use when choosing or evaluating a startup revenue model, pricing\/value metric, packaging\/tier design, or calculating unit economics (LTV, CAC, payback, gross margin, NRR), including usage-based\/credit\/AI pricing and variable compute\/COGS constraints."
}

Startup Business Models

Systematic workflow for choosing revenue models, pricing, and unit economics.

Quick Start (Inputs)

Ask for the smallest set of inputs that makes the decision meaningful:

  • Business type: SaaS, usage-based/API, marketplace, services, hardware + service
  • ICP/segment(s): SMB / mid-market / enterprise (and ACV/ARPA bands)
  • Current pricing and packaging: value metric, tiers, limits, discount policy, billing cadence
  • Unit economics drivers: fully-loaded CAC, gross margin/COGS (include LLM/infra/third-party), churn/retention, expansion (NRR)
  • Constraints: sales motion (PLG vs sales-led), implementation constraints (billing metering, proration), gross margin floor, payback target

If numbers are missing, proceed with ranges + explicit assumptions and highlight what to measure next.

Workflow

  1. Classify the model
  • Subscription, usage-based, freemium, marketplace take-rate, transaction fee, ads, outcome-based, credit-based, hybrid.
  1. Build a segment-level unit economics snapshot
  1. Evaluate model fit and risks
  • Align price metric with value delivered and cost incurred (especially usage + AI compute).
  • Identify failure modes: margin compression, adverse selection, channel conflict, support cost explosions, metering/overage friction.
  1. Propose pricing + packaging changes
  • Use pricing-strategy for willingness-to-pay research and tier differentiation.
  • Draft a tier table with segment, value metric, price, included usage, limits, upgrade trigger, and enforcement rule. Label untested prices as hypotheses.
  1. Define measurement and roll-out
  • Define success metric + guardrails, evaluation design, and explicit lag windows (conversion now, retention later).
  1. Deliver a decision-ready output
  • Recommendation, rationale, assumptions, scenarios (base/best/worst), and next experiments.

2026 Heuristics (Context-Dependent)

  • Prioritize payback and gross margin over a single ratio; LTV:CAC is easiest to game.
  • Typical SaaS targets (directional, by segment/stage): LTV:CAC 3-5x, payback 6-12 months (PLG) or 12-18 months (sales-led early), NRR >100% (mid-market/enterprise) and gross margin >70% (software-only).
  • For usage-based / AI products: model contribution margin per unit (token/job/workflow) and set pricing guardrails (rate limits, minimums, commit tiers, credit expiries).

Related Skills (Routing)

For idea validation, record the customer problem, evidence of willingness to pay, and the next experiment before committing to a model.

Pricing Change Measurement & Experiment Design

Use this when you are changing pricing, packaging, value metric, limits, discounts, or billing cadence.

1) Define success and guardrails (before launch)

Type Examples
Primary success metric Net revenue retention (NRR), ARPA/ARPU, gross margin %, payback period, upgrade rate, expansion MRR
Guardrails New logo conversion, activation rate, refund rate, support load, churn (logo + revenue), sales cycle length

2) Pick an evaluation design

Design Best when How to read results
A/B (randomized) Self-serve / PLG flows Compare conversion, ARPA, refunds, and downstream retention by assignment
Holdout/control cohort Pricing is hard to randomize Compare treated vs. holdout cohorts matched on segment, channel, and start month
Step rollout (time-based) Enterprise contracts, invoicing cycles Compare pre/post with a parallel cohort (not exposed yet) to reduce seasonality bias
Geo/account rollout Regions/segments are separable Compare regions/segments; watch for channel mix shifts

3) Use explicit lag windows (avoid premature conclusions)

  • Short lag (days to 2 weeks): checkout conversion, activation, sales cycle friction, refund/support spikes.
  • Medium lag (4 to 8 weeks): upgrades, expansion MRR, usage growth, discounting behavior, proration effects.
  • Long lag (90 to 180+ days, B2B): churn, net revenue retention, renewal outcomes, contraction risk.

4) Report an "all-in" view (not just conversion)

  • Revenue quality: net revenue after refunds, discounts, and credits; gross margin impact (including variable compute/COGS).
  • Segments: break down by plan, seat band, channel, ACV/ARR band, and customer age (new vs. renewal).
  • Decision rule: write a go/no-go threshold (example: "NRR +2pts with no >0.5pt drop in activation and no >10% increase in support load").

Available Resources and Outputs

Need Bundled guidance
CAC, LTV, payback, and cohort analysis Unit-economics methodology and worksheet
Willingness-to-pay and tier design Pricing strategy
Business model canvas Product strategist, Business Model Canvas section
MRR/ARR, burn, runway, and scenarios Startup financial modeling

Create the pricing-tier table described in Workflow step 4 and an assumptions table with input, value/range, source URL, date, and confidence. This skill does not bundle separate canvas/pricing template files or a data-source catalog. Use current, attributable sources for business decisions.


Do / Avoid (Jan 2026)

Do

  • Define your value metric (seat/usage/outcome) and validate willingness-to-pay early.
  • Include COGS drivers in pricing decisions (especially usage-based).
  • Use discount guardrails and renewal logic (avoid ad-hoc deals).

Avoid

  • Pricing as an afterthought (“we’ll figure it out later”).
  • Margin blindness (shipping usage growth that destroys gross margin).
  • Misleading LTV calculations from immature cohorts.

What Good Looks Like

  • Packaging: a clear value metric, tier logic, and discount policy (with enforcement rules).
  • Unit economics: CAC, gross margin, churn, payback, and retention defined and tied to cohorts.
  • Assumptions: one inputs sheet, ranges/sensitivities, and scenarios (base/best/worst).
  • Experiments: pricing changes tested with decision rules (not “gut feel” rollouts).
  • Risks: margin compression, adverse selection, channel conflict, and support cost modeled.

Optional: AI / Automation

Use only when explicitly requested and policy-compliant.

  • Summarize pricing research and competitor snapshots; verify manually before acting.
  • Draft pricing page copy; humans verify claims and consistency with contracts.

Version History

  • b38ec7b Current 2026-09-22 21:54

    修复捆绑资源指引对齐问题并检查引用路径。

  • ebfab9b 2026-08-20 08:29

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