ecommerce-checkout-optimization

ecommerce-checkout-optimization is a skill for Claude Code, Codex from nexscope-ai/eCommerce-Skills. It costs 34 tokens per session (532 once invoked), scanned A, original, MIT.

A guide for reviewing and improving the checkout process in an online shop. It covers payment choices, guest checkout, trust information, shipping details, and other points where shoppers may abandon their carts.

In plain words
What is it for?
Use it to review checkout funnels and improve stores on platforms such as Shopify, WooCommerce, Amazon, Etsy, eBay, Walmart, TikTok Shop, and BigCommerce.
Why use it?
It helps locate reasons customers leave before paying, such as unclear costs, limited payment methods, or forced account creation. It turns those possible problems into specific checkout improvements.

Skill for Claude CodeCodex

Written for no agent in particular: nothing here depends on one.

not rated 900repo +29 14d ago A scan Socket: passSnyk: passSkillSpector: warn 34 tokens original MIT

Good fit Use it to review checkout funnels and improve stores on platforms such as Shopify, WooCommerce, Amazon, Etsy, eBay, Walmart, TikTok Shop, and BigCommerce.

Compare 6 skills from other repositories ↓
Install with agentmods
npx agentmods add skills/nexscope-ai/ecommerce-skills/ecommerce-checkout-optimization
Install

Getting it into your agent

One page per mod, every tool's command on it. A separate URL per tool would split the same page into five that compete with each other.

Any agent
npx skills add nexscope-ai/eCommerce-Skills --skill ecommerce-checkout-optimization
Clone the repo
git clone --depth 1 https://github.com/nexscope-ai/eCommerce-Skills

Made for: Claude Code, Codex.

Wrote this? Show the measurements

A badge with what this costs and how it scanned, read live from this page, so it follows the numbers instead of freezing them. Markdown for a README, HTML for a documentation site or a project page.

agentmods badge for ecommerce-checkout-optimization

README.md
[![agentmods](https://agentmods.dev/badge/skills/nexscope-ai/ecommerce-skills/ecommerce-checkout-optimization/github.svg)](https://agentmods.dev/skills/nexscope-ai/ecommerce-skills/ecommerce-checkout-optimization)
Your own site
<a href="https://agentmods.dev/skills/nexscope-ai/ecommerce-skills/ecommerce-checkout-optimization"><img src="https://agentmods.dev/badge/skills/nexscope-ai/ecommerce-skills/ecommerce-checkout-optimization/github.svg" alt="Measured on agentmods" height="20"></a>

Or the 80×15 button, for a site that already has a row of RSS and ATOM ones. Only the verdict fits; the numbers stay here.

agentmods 80×15 button for ecommerce-checkout-optimization

Your own site · 80×15
<a href="https://agentmods.dev/skills/nexscope-ai/ecommerce-skills/ecommerce-checkout-optimization"><img src="https://agentmods.dev/badge/skills/nexscope-ai/ecommerce-skills/ecommerce-checkout-optimization.svg" alt="Reviewed on agentmods" width="80" height="20"></a>
Per session 34 Skills are progressive disclosure: only the name and description are preloaded; the body loads when the skill is used.
When invoked 532 The whole file, excluding the scripts and references it only reads on demand.
Security scan A 0 findings. A grade says what 26 rules found in the file — not that it is safe. Third-party audits
  • Socket pass 10 Apr 2026
  • Snyk pass 10 Apr 2026
  • NVIDIA SkillSpector warn 7 Sept 2026
SkillSpector: 1 finding, up to medium

These are SkillSpector’s own severities. On a checked sample its high-severity flags on skills were ~96% false positives — a documented command, a public API, a “never do X” rule — so we show them as a caution to read, not a verdict. Why →

  • medium MCP Rug Pull · line 21
    npx commands without a version suffix (e.g. @1.0.0) create a rug-pull risk if the upstream server is compromised and publishes a malicious update.
    Fix: Pin the version: npx @scope/[email protected]
How audits are shown
Origin original No closer match found in the catalogue.
Token cost

What it costs to keep this loaded

Counted locally with the o200k_base tokenizer, which is exact for GPT models; Claude uses its own tokenizer and its counts differ. Treat this as one consistent yardstick across the catalogue rather than a bill. Prices are per million input tokens.

ModelPer sessionOnce invoked
Fable 5.1 $0.00034 $0.00532
Opus 5 $0.00017 $0.00266
Sonnet 5 $0.00007 $0.00106
Haiku 4.5 $0.00003 $0.00053

Measured 10d ago against content hash 7c757dee99be, method: parsed. Prices are Anthropic first-party input rates as of 2026-09-09, from the pricing page.

Security

Grade A, and why

ecommerce-checkout-optimization scanned grade A with 0 findings against 26 rules in 11 categories — prompt injection, anti-refusal, data exfiltration, privilege escalation, supply chain, agent snooping, system-prompt leakage, SSRF and excessive agency — measured 10d ago.

A static scan of the body, not an audit. Every finding is printed with the line that produced it so you can judge whether it matters here. A mod is markdown that instructs an agent; that is exactly why what it instructs is worth reading.

Nothing flagged

None of the 26 patterns this scan looks for appear in this file: no shell pipes, no recursive deletes, no credential paths, no hidden text, no instruction-override or anti-refusal phrasing, no agent-config snooping. That is not a guarantee, it is the absence of the things that are checkable.

ecommerce-checkout-optimization/SKILL.md · 65 lines

How it starts

The opening of the file, as written. The whole thing — 65 lines — stays where its author put it; the contents beside it link to each section on GitHub.

E-Commerce Checkout Optimization 💳

Optimize e-commerce checkout flow to reduce cart abandonment. Friction analysis, payment method optimization, trust signals, and checkout UX best practices.

Supported platforms: Amazon, Shopify, WooCommerce, Walmart, TikTok Shop, Etsy, eBay, BigCommerce.

Built by Nexscope — your AI assistant for smarter e-commerce decisions.

Install

npx skills add nexscope-ai/eCommerce-Skills --skill ecommerce-checkout-optimization -g

Usage

My Shopify store has 68% cart abandonment rate. Checkout has 3 steps. Help me identify and fix the biggest friction points.

Capabilities

  • Checkout funnel analysis (drop-off points identification)
  • Cart abandonment rate benchmarking (70% average — Baymard Institute)
  • Payment method optimization (PayPal, Apple Pay, BNPL, local methods)
  • Guest checkout vs account creation strategy
  • Trust signal placement (security badges, guarantees, return policy)
  • Shipping cost and delivery time transparency
  • Post-checkout optimization (order confirmation, cross-sell)

How This Skill Works

Step 1: Collect information from the user's message — product, platform, current situation, and goals.

Step 2: Ask one follow-up with all remaining questions using multiple-choice format. Allow shorthand answers (e.g., "1b 2c 3a").

Step 3: Research and analyze using the frameworks and methodology below.

Step 4: Deliver structured, actionable output with specific recommendations, not vague advice.

Output Format

  • Start with a summary of findings
  • Include specific data points and benchmarks where available
  • Provide prioritized action items
  • Mark estimates with ⚠️ when based on incomplete data
  • End with concrete next steps

Other Skills

More e-commerce skills: nexscope-ai/eCommerce-Skills

Amazon-specific skills: nexscope-ai/Amazon-Skills

Read the full file on GitHub · 65 lines

Changes

What this file has done since we first saw it

Hashed on every crawl. A supply-chain change to an agent config is a question of when, not whether, so the history is kept rather than the latest state alone.

  1. 10d ago First seen · 65 lines · 34 tokens per session scan A 7c757dee99be

Subscribe to this mod's changes

ecommerce-checkout-optimization is a skill published in the GitHub repository nexscope-ai/eCommerce-Skills (900 stars, last pushed 14d ago), licensed MIT. It adds 34 tokens to every session and 532 once invoked, about $0.0002 per session on Opus 5. A static security scan graded it A with 0 findings. No closer match exists in the catalogue, so it is treated as the original; first seen 2026-08-30.

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