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The Savi Tools MCP server costs 2,149 tokens before the first call.

Every request your agent makes carries every tool definition this server exposes — context your code, documents and conversation can't use, mostly for tools the agent never calls. You don't need them all in the window, and you don't have to pay for them.

QUICK ANSWER The Savi Tools MCP server's 25 tool definitions consume 2,149 tokens — 1.1% of a 200k context window, and around the median MCP server (1,879 tokens). A scoped grant exposing only the tools you use cuts that roughly in proportion.

MEASURED FROM SCHEMAS tiktoken o200k_base · rank #4297 of 9,299 measured servers · refreshed every build Method →

What that costs before your agent starts working.

Tool definitions are overhead: they occupy context on every request and compete with your code, documents and conversation history for the same window.

200K WINDOW 1.1%
1M WINDOW 0.2%

Corpus context: Savi Tools ranks #4297 of 9,299 measured MCP servers by definition cost. The median is 1,879 tokens, p90 is 13,073, and the heaviest (Ainumbers Mcp Apps) is 342,008 — 171% of a 200k window on its own. New to this? See MCP token cost and context window in the glossary.

Where the 2,149 tokens go.

Each row is one tool definition as a tools/list entry — name, description and input schema — counted with o200k_base. Average: 86 tokens per tool.

ToolCategoryTokens% of server
get_contact_history Read 123 5.7%
get_profitability Read 118 5.5%
get_tax_deductions Read 116 5.4%
get_time_summary Read 112 5.2%
get_expense_summary Read 105 4.9%
list_recent_invoices Read 105 4.9%
get_invoice_details Read 102 4.7%
get_cost_summary Read 98 4.6%
list_recent_expenses Read 88 4.1%
get_1099_summary Read 87 4.0%
get_client_summary Read 86 4.0%
get_contact_summary Read 82 3.8%
get_mileage_summary Read 82 3.8%
get_project_summary Read 81 3.8%
get_revenue_summary Read 81 3.8%
list_projects Read 80 3.7%
list_uncategorized_transactions Read 78 3.6%
get_business_profile Read 72 3.4%
get_tax_setaside Read 71 3.3%
get_business_snapshot Read 68 3.2%
list_clients Read 66 3.1%
list_outstanding_invoices Read 65 3.0%
get_goals_progress Read 64 3.0%
get_cash_summary Read 60 2.8%
list_bills_owed Read 59 2.7%

Your agent uses a handful of these tools. It pays for all 25.

You don't need all 25 of those definitions in the window. PolicyLayer is an MCP gateway that sits in front of Savi Tools: only the tools you grant are exposed to the agent, the rest never load. A smaller window means a sharper agent — less noise when it picks a tool — and every request costs less:

Grant scopeDefinition costReduction
All 25 tools (no gateway) 2,149 tokens
3 granted tools ~258 tokens −88%
5 granted tools ~430 tokens −80%
10 granted tools ~860 tokens −60%
  1. Create a free account and register Savi Tools — nothing to install.
  2. Grant only the tools you use — ungranted definitions never enter the context window.
  3. Point your MCP client (Claude, Cursor, anything) at your gateway URL.
CUT SAVI TOOLS TOKEN COST →

Instant setup, no code required.

Savi Tools token-cost questions.

How many tokens does the Savi Tools MCP server use?+

Its 25 tool definitions total 2,149 tokens — 1.1% of a 200k context window — measured with tiktoken o200k_base over the serialised tools/list payload. Exact counts vary slightly by client and model.

Why does Savi Tools consume tokens before I send a message?+

MCP clients load every connected server's tool definitions — name, description, and input schema — into the model's context so it knows what it can call. That payload is charged against your context window on every request, whether or not a tool is used.

How do I reduce Savi Tools's token usage?+

Expose fewer tools. A PolicyLayer grant scopes Savi Tools to only the tools you allow — ungranted definitions are filtered out of the tool list, so they never enter the context window. A grant of 3 typical tools costs roughly 258 tokens, a 88% reduction.

Does deferred tool loading fix this?+

Partially, in some clients. Claude Code defers MCP tool schemas behind a tool-search step by default, and VS Code has experimental grouping — but you still pay tokens per search and reload, and Cursor, Windsurf and Gemini CLI load definitions upfront. Reducing the exposed tool set cuts the cost in every client.

How these numbers were measured.

01
Serialisation

Each tool is serialised as a tools/list entry — name, description, input schema — from the schemas in the PolicyLayer scan database. Clients differ slightly in framing, so treat counts as close estimates.

02
Tokeniser

tiktoken o200k_base (GPT-4o/o-series). Anthropic's current tokeniser isn't published, so Claude's exact counts will differ; for English text and JSON schemas the totals are close enough to treat these as estimates.

03
Deferred loading

Some clients now defer schema loading (Claude Code's tool search; VS Code experimental grouping). You still pay per search and reload — and Cursor, Windsurf and Gemini CLI load everything upfront.

Computed 20-09-2026 from the PolicyLayer scan database over all 25 catalogued Savi Tools tools. Counts refresh with every site build.

Expose only the tools you use — the rest never enter your context.

A PolicyLayer grant scopes Savi Tools to the tools you actually allow. Ungranted definitions never load, and every call that does run is checked against policy first.

Instant setup, no code required.

46,500+ MCP servers and 515,000+ tools scanned and risk-classified.

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