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AOV Uplift Simulator

by LeroyCreates · GitHub ↗ · v1.0.0 · MIT-0
cross-platform ✓ Security Clean
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/install aov-uplift-simulator
Description
Estimate how changes in bundle uptake, upsell acceptance, or cart-building tactics could increase average order value without hiding margin tradeoffs. Use wh...
README (SKILL.md)

AOV Uplift Simulator

Model how AOV could move under different bundle, upsell, and pricing assumptions before you change the live offer.

Solves

Many ecommerce teams make pricing or offer decisions with incomplete economics:

  • they see revenue upside but not margin drag;
  • they model one variable but ignore knock-on effects;
  • they test offers without clear guardrails;
  • they scale offers before checking break-even logic.

Goal: Turn offer assumptions into a clearer economic view that is easier to evaluate and act on.

Use when

  • You want to compare offer scenarios before launching
  • A discount, bundle, or upsell idea sounds good but needs economic validation
  • Growth teams need a faster way to pressure-test merchandising decisions
  • Teams want clearer go / watch / no-go logic before scale

Inputs

  • Core commercial assumptions relevant to the scenario
  • Price and cost structure
  • Margin or refund assumptions
  • Traffic / conversion or attach-rate assumptions
  • Constraints or guardrails

Workflow

  1. Clarify the baseline commercial setup.
  2. Model the scenario inputs that change order economics.
  3. Surface upside, downside, and sensitivity.
  4. Identify the biggest weak points or break-even pressure.
  5. Recommend whether to test, revise, or avoid the scenario.

Output

  1. Baseline view
  2. Scenario result
  3. Margin / break-even implications
  4. Key risks and weak points
  5. Recommendation

Quality bar

  • Output should be commercially interpretable, not just a raw formula dump.
  • Recommendations should stay grounded in ecommerce economics.
  • Weak points should be clearly separated from upside assumptions.
  • The result should help a team decide what to test next.

Resource

See references/output-template.md.

Usage Guidance
This skill appears internally consistent and low-risk because it is instruction-only and requests only business assumptions. Before using it, avoid pasting sensitive secrets or direct database credentials into the inputs — supply only the numeric assumptions needed (prices, costs, attach rates, conversion estimates). If you plan to let the agent run autonomously, be mindful that it could request or compute additional context; consider restricting autonomous access if you don't want the agent to query other systems. Finally, validate important results with your finance or analytics team before making live pricing changes.
Capability Analysis
Type: OpenClaw Skill Name: aov-uplift-simulator Version: 1.0.0 The skill bundle contains only metadata and instructional Markdown files (SKILL.md and a template) for an ecommerce Average Order Value (AOV) simulator. There is no executable code, no network activity, and no evidence of prompt injection or malicious intent.
Capability Assessment
Purpose & Capability
The name and description describe an AOV/offer economics simulator and the skill is instruction-only with no binaries, env vars, or unrelated dependencies — everything requested is proportionate to modeling pricing and margin scenarios.
Instruction Scope
SKILL.md provides a confined workflow for building and comparing commercial scenarios, asks for business assumptions (price, cost, attach rates, etc.), references an internal output template, and does not instruct the agent to read system files, use external endpoints, or access unrelated secrets.
Install Mechanism
There is no install spec and no code files; this is the lowest-risk form (instruction-only), so nothing is written to disk or downloaded.
Credentials
The skill declares no environment variables, credentials, or config paths. Inputs are commercial assumptions provided by the user, which is appropriate for the stated purpose.
Persistence & Privilege
always is false and the skill does not request persistent or elevated privileges. Autonomous invocation is allowed by platform default but the skill itself does not request additional persistence.
How to Use
  1. Make sure OpenClaw is installed (local or Docker)
  2. Run the install command in chat: /install aov-uplift-simulator
  3. After installation, invoke the skill by name or use /aov-uplift-simulator
  4. Provide required inputs per the skill's parameter spec and get structured output
Version History
v1.0.0
Initial beta release
Metadata
Slug aov-uplift-simulator
Version 1.0.0
License MIT-0
All-time Installs 0
Active Installs 0
Total Versions 1
Frequently Asked Questions

What is AOV Uplift Simulator?

Estimate how changes in bundle uptake, upsell acceptance, or cart-building tactics could increase average order value without hiding margin tradeoffs. Use wh... It is an AI Agent Skill for Claude Code / OpenClaw, with 164 downloads so far.

How do I install AOV Uplift Simulator?

Run "/install aov-uplift-simulator" in the OpenClaw or Claude Code chat to install it in one step — no extra setup required.

Is AOV Uplift Simulator free?

Yes, AOV Uplift Simulator is completely free, licensed under MIT-0. You can download, install and use it at no cost.

Which platforms does AOV Uplift Simulator support?

AOV Uplift Simulator is cross-platform and runs anywhere OpenClaw / Claude Code is available (cross-platform).

Who created AOV Uplift Simulator?

It is built and maintained by LeroyCreates (@leooooooow); the current version is v1.0.0.

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