MCPサーバー

zRev AI

ai.zrev/zrev

このMCPでできること

Analyzes website AI readability, models GTM ROI, provides GTM diligence resources, and supports zRev contact requests.

about_zrev
About zRev
Returns a plain-text profile of zRev AI: what the firm does, the companies it is the best fit for, who it is not for, its six service lines with a link to each, and contact details. Use this first when a user asks who zRev is, what it offers, or whether it suits their company. Read-only, static content, no arguments, no authentication, no rate limit.
読み取り専用 冪等
入力スキーマ
{'type': 'object', 'properties': {}}
book_call
How to book an intro call
Returns the link and instructions for booking a free 30-minute intro call with zRev's founder, plus what the call covers. It does not book anything: it only returns the scheduling link for the human to open themselves. Use when a user says they want to talk to zRev. If they would rather be contacted, use leave_contact instead. Read-only, static content, no arguments, no authentication, no rate limit.
読み取り専用 冪等
入力スキーマ
{'type': 'object', 'properties': {}}
cold_read
Cold-read a homepage
Fetches a company's public homepage and returns, in two or three sentences, what the company appears to do and who it serves, based only on the visible text of that page and with no outside knowledge. Anything missing from the answer is missing from the homepage, which is the point: it shows what an AI assistant would tell a buyer about that company. Use when a user asks how their site, or a competitor's, reads to an AI. The summary is model-generated and can be wrong where the page is vague. Makes one outbound HTTP request to the public domain you pass; stores nothing about it. No authentication. Shares a fair-use limit per IP address with grade_llms_txt, and returns a plain-text notice when that limit is reached.
読み取り専用 外部アクセスあり 冪等
入力スキーマ
{'type': 'object', 'required': ['domain'], 'properties': {'domain': {'type': 'string', 'description': 'Bare domain to read, without protocol or path, e.g. acme.com'}}}
estimate_roi
Estimate the ROI of AI across a GTM motion
Runs zRev's ROI model on one company's numbers and returns, as plain text, the projected annual impact in USD split into pipeline lift, customer acquisition cost savings and the value of hours returned to the team, followed by the model's assumptions and a link to the interactive calculator preset to the same inputs. Use when a user wants a number for their own company; all six inputs are required, so ask for any that are missing rather than guessing. The output is an estimate from a fixed model, not a forecast or a quote. Pure calculation: nothing is stored, no external calls, no authentication, no rate limit.
読み取り専用 冪等
入力スキーマ
{'type': 'object', 'required': ['arr', 'deal_size', 'monthly_leads', 'close_rate_pct', 'cac', 'team_size'], 'properties': {'arr': {'type': 'number', 'description': 'Annual recurring revenue in USD, e.g. 10000000'}, 'cac': {'type': 'number', 'description': 'Customer acquisition cost per new customer in USD, e.g. 8000'}, 'deal_size': {'type': 'number', 'description': 'Average deal size in USD, e.g. 25000'}, 'team_size': {'type': 'number', 'description': 'Number of people on the GTM team, account executives plus SDRs, e.g. 8'}, 'monthly_leads': {'type': 'number', 'description': 'Qualified leads per month, e.g. 120'}, 'close_rate_pct': {'type': 'number', 'description': 'Close rate as a percentage, e.g. 15 for 15%'}}}
get_benchmarks
Typical engagement results
Returns zRev's typical engagement results as plain text: 2x pipeline velocity, 20% lower customer acquisition cost, 10 hours back per rep per week, 60% of GTM busywork automated, results that start inside 30 days and mature by 60. The response always ends with the provenance caveat: these are typical results benchmarked against comparable AI-powered GTM implementations and they vary by stack, data quality and adoption, so present them as typical, not guaranteed. Use when a user asks what results to expect. For an estimate on a specific company's numbers use estimate_roi instead. Read-only, static content, no arguments, no authentication, no rate limit.
読み取り専用 冪等
入力スキーマ
{'type': 'object', 'properties': {}}
get_engagement_timeline
The 60-day engagement, phase by phase
Returns the phases of a standard 60-day zRev engagement as plain text: what happens in each phase, what is delivered, and when first results appear. Use when a user asks how an engagement works, how long it takes, or what they would receive and when. Read-only, static content, no arguments, no authentication, no rate limit.
読み取り専用 冪等
入力スキーマ
{'type': 'object', 'properties': {}}
grade_llms_txt
Grade a site's llms.txt
Fetches https://<domain>/llms.txt (the file that tells AI systems what a site contains) and grades it with seven deterministic checks. Returns a 0 to 100 score and the pass or miss result of each check as plain text. If the site has no llms.txt the response says so and links to zRev's free generator. Use when a user asks whether a site is readable by AI assistants or wants their llms.txt reviewed. Makes one outbound HTTP request to the public domain you pass; stores nothing about it. No authentication. Shares a fair-use limit per IP address with cold_read, and returns a plain-text notice when that limit is reached.
読み取り専用 外部アクセスあり 冪等
入力スキーマ
{'type': 'object', 'required': ['domain'], 'properties': {'domain': {'type': 'string', 'description': 'Bare domain to grade, without protocol or path, e.g. acme.com'}}}
gtm_diligence_checklist
GTM due diligence checklist
Returns zRev's go-to-market due diligence checklist for investors and acquirers: 47 questions across ten dimensions, each with the data-room artifact that answers it and the red flag to watch for. Call with no arguments to get the list of ten dimensions; call with a dimension number from 1 to 10, or a keyword such as churn, pipeline or marketing, to get that dimension's questions in full. Use when a user is assessing a company's revenue engine before an investment or acquisition. Read-only reference content, no authentication, no rate limit.
読み取り専用 冪等
入力スキーマ
{'type': 'object', 'properties': {'dimension': {'type': 'string', 'description': "Optional. A dimension number from 1 to 10, or a keyword such as 'churn', 'pipeline' or 'marketing'. Omit to list the ten dimensions."}}}
leave_contact
Ask zRev to get in touch
Records an email address, with optional name, company and note, so that zRev's founder can reach out, and returns a plain-text confirmation. This is the only tool here that writes data: it creates one lead record on zRev's side and triggers no email to the address given. Use only when the human you are assisting has explicitly asked to be contacted by zRev; never call it speculatively or with an address the user has not given you for this purpose. Submitting the same email again updates the existing record rather than creating a duplicate. No authentication. Rate-limited per IP address.
冪等
入力スキーマ
{'type': 'object', 'required': ['email'], 'properties': {'name': {'type': 'string', 'description': "Optional. The human's name"}, 'note': {'type': 'string', 'description': 'Optional. What they want to talk about, in their words'}, 'email': {'type': 'string', 'description': "The human's email address, given by them for this purpose"}, 'company': {'type': 'string', 'description': 'Optional. Their company name'}}}
変更
cold_read
2026年9月30日2:41
変更
grade_llms_txt
2026年9月30日2:41
追加
leave_contact
2026年9月18日2:40
追加
book_call
2026年9月18日2:40
追加
gtm_diligence_checklist
2026年9月18日2:40
追加
cold_read
2026年9月18日2:40
追加
grade_llms_txt
2026年9月18日2:40
追加
estimate_roi
2026年9月18日2:40
追加
get_engagement_timeline
2026年9月18日2:40
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get_benchmarks
2026年9月18日2:40
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about_zrev
2026年9月18日2:40