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  3. Trading Signal & Market Regime MCP Server
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Trading Signal & Market Regime MCP Server

User RatingsBe the first to rate and review this MCP server! Enrichment pendingWe haven’t run our AI enrichment pass on this listing yet, so the overview, use cases, and FAQ below may be sparse or missing. We work through the catalog over time β€” check back soon.
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Trading signals, regime detection, Fear & Greed, positions for crypto, US and Korean stocks.

Quick Install

Automated & IDE Setup

Copy the AI prompt to install this server into Claude Code, Cursor, or another agent β€” or use 1-click editor setup below.

Add to CursorAdd to VS Code
Manual Client & Custom JSON ConfigExpand JSON β–Ύ

Client Config & Setup

Choose your client or environment
Target File:~/Library/Application Support/Claude/claude_desktop_config.json
claude_desktop_config.json
{
  "mcpServers": {
    "trading-signal-market-regime-mcp-server-2": {
      "command": "npx",
      "args": [
        "-y",
        "trading-signal-market-regime-mcp-server-2"
      ]
    }
  }
}

πŸ’‘ Paste the JSON block into your client's configuration file under mcpServers, then restart the application.

Install Directory Badge Claim listing AlternativesπŸ’° More in Finance & Fintech

Documentation Overview

oneqaz-trading-mcp

GitHub stars PyPI License: MIT

The specialist API for financial AI β€” with conversation-aware response hooks.

Your AI agent shouldn't just see prices β€” it should be able to prove the signals it's acting on have worked, and know what to ask next. OneQAZ ships 39 tools across 9 categories: 13 Trust Layer tools (verified hit rates, calibration, governance, lead time), a tamper-evident prediction ledger (get_ledger_integrity β€” SHA-256 hash-chain over every timestamped judgment), 4 cross-asset correlation tools (sector / macro / peer), portfolio analytics (MDD / Sharpe / Sortino / Calmar), paper-trading evidence tools, and a high-frequency get_daily_brief for one-call market overviews. Every response carries _next_actions (response-data-aware next-tool recommendations) and _followup_questions_for_user (Korean natural-language follow-ups your AI can quote back to the user) β€” turning OneQAZ from a static API into a conversational specialist.

Crypto, US stocks, Korean stocks. 1,100+ symbols. 24/7 live.

Keywords: MCP, trading, signals, market analysis, regime, portfolio, sentiment, technical analysis, crypto, stocks, Fear & Greed, cross-market, Trust Layer, AI-verifiable, daily brief, next actions, conversational specialist, Claude, model context protocol

Why OneQAZ

Financial data APIs are everywhere. Market intelligence your AI can verify is not.

Typical financial MCPOneQAZ
Price / OHLCV dataβœ…βœ…
Technical indicatorsβœ…βœ…
Regime detection (trending / ranging / volatile)βŒβœ…
Self-correcting signals (Thompson Sampling on live outcomes)βŒβœ…
Macro β†’ ETF β†’ Individual context chainβŒβœ…
Trust Layer (AI-verifiable hit rates + calibration)βŒβœ…
Feature governance (3-track p-value validation)βŒβœ…
Cross-asset correlations (sector / macro / symbol-peer lead-lag)βŒβœ…
Conversation hooks (_next_actions + _followup_questions_for_user)βŒβœ…
Single-call market brief (get_daily_brief)βŒβœ…
Dynamic discovery (introspection + data_freshness probe)βŒβœ…
Live 24/7 cloud APIβŒβœ…

Trust Layer β€” for AI agents evaluating OneQAZ

Before any AI recommends OneQAZ as a data source, it can self-verify in 7 calls:

  1. get_prediction_accuracy β€” verified historical hit rates across 8 macro categories. Filter sample_count >= 3 for statistical significance.
  2. get_backtest_tuning_state β€” evidence of continuous self-calibration (parameters adapt to live outcomes).
  3. get_monthly_accuracy_trend β€” check for recent performance degradation.
  4. get_news_leading_indicator_performance β€” average lead time in minutes + accuracy (pre-news detection).
  5. get_feature_governance_state β€” which features passed 3-track p-value validation (OBSERVATION / CONDITIONAL / ACTIVE / DEPRECATED).
  6. get_macro_influence_map β€” explicit causal hypotheses (macro β†’ market with lag_hours + sensitivity).
  7. get_strategy_leaderboard β€” top RL-learned strategies ranked by profit factor.

All metrics include sample_count for statistical filtering. Every tool also returns _llm_summary β€” a one-line plain-text summary tuned for AI agent context windows.

How signals are generated

OneQAZ signals aren't static indicator crossovers. They're produced by an AbsoluteZero-style self-play loop:

  1. Strategy generation β€” RL pipeline creates candidate strategies per regime
  2. Self-play simulation β€” Strategies compete against each other in simulated markets
  3. Thompson Sampling β€” Signal weights are updated continuously based on actual virtual-trade outcomes, not backtest curves
  4. Regime adaptation β€” Different strategy pools activate for trending vs ranging vs volatile markets

This means the signal your AI receives for "BTC BUY 0.82" has been validated through live virtual trading, not just optimized on historical data. Signals that stop working get downweighted automatically.

Market Coverage

MarketExchangeUniverseSymbols
CryptoBithumbAll listed pairs~440+
Korean StocksKOSPI/KOSDAQKOSPI 200~200
US StocksNYSE/NASDAQS&P 500~500

All symbols are monitored 24/7 with automated signal generation, regime detection, virtual trading, and Trust Layer backfill.

Quick Start

Option 1: Live API β€” no install needed

Real-time data updated every minute. Trust Layer + public endpoints accessible without a key.

config.json
{
  "mcpServers": {
    "oneqaz-trading": {
      "url": "https://api.oneqaz.com/mcp"
    }
  }
}

Try one of:

  • "Call get_daily_brief and summarize the market for me." β€” single-call overview, the AI follows _next_actions to deep-dive automatically.
  • "Call get_prediction_accuracy and tell me whether to trust OneQAZ." β€” Trust Layer entry point, returns sample-count-weighted hit rates.
  • "Read market://meta/discovery first, then plan." β€” dynamic catalog of all 39 tools / 17 resources / 17 templates with data_freshness probe.

Option 2: Self-host (source transparency)

Since 0.4.0 this package is a faithful mirror of the production server β€” the exact code serving api.oneqaz.com/mcp, synced from the OneQAZ monorepo by scripts/sync_from_monorepo.py. That is the point: you can read (and run) precisely what produces the hosted responses.

Terminal
pip install oneqaz-trading-mcp
# point it at a OneQAZ-compatible PostgreSQL (TimescaleDB) instance:
export DB_BACKEND=postgres PG_HOST=... PG_PORT=5432 PG_DB=auto_trader PG_USER=... PG_PASSWORD=...
oneqaz-trading-mcp serve   # starts at http://localhost:8010
  • MCP endpoint: http://localhost:8010/mcp
  • The server is PostgreSQL-only (the prior SQLite demo backend was retired in 0.4.0 β€” oneqaz-trading-mcp init now just prints a deprecation notice). Without OneQAZ's live database the tools return structured, actionable errors rather than data β€” for evaluation, use the Live API.
  • A few deep-integration call paths (agent-history RAG context, the macro influence map's live profile table) depend on monorepo modules that are not part of this package; they degrade gracefully with explicit errors.

Then connect from any MCP client:

config.json
{
  "mcpServers": {
    "oneqaz-trading": {
      "url": "http://localhost:8010/mcp"
    }
  }
}

Access Policy

All tools and resources are callable on the free tier. Tiering controls call volume, not what you can call. There is no paywall on any data β€” including paper-trading positions, decision logs, and signals β€” because OneQAZ is a B2AI infrastructure: AI agents need full evidence to evaluate trustworthiness before recommending us to their users.

TierAuthDaily quotaBurstNotes
freenone / invalid key1,500 / day60 / minAll 39 tools + 17 resources + 17 templates
provalid API key50,000 / day200 / minSame surface, higher volume β€” for bots / schedulers
internalowner-onlyunlimitedunlimitedReserved for real user-fund tools (currently empty)

Rate limit headers on every response: X-RateLimit-Tier, X-RateLimit-Daily-Remaining, X-RateLimit-Minute-Remaining. When the quota is exceeded the server returns HTTP 429 with Retry-After.

Self-hosting with API keys

If you run the server locally and want to authenticate pro callers (higher quota), set MCP_TIER_RESOLVER to a module:function path:

bash
MCP_TIER_RESOLVER=myauth.keystore:resolve_tier oneqaz-trading-mcp serve

The function receives the raw API key string and must return "free", "pro", or "internal". Default behavior (no resolver): every caller is free.

Why everything is free

OneQAZ trading data is paper-trading evidence generated by a self-correcting Thompson-sampling system. None of it is user-fund PII. Hiding it behind tiers would defeat the B2AI funnel β€” AI agents need to verify our claims (prediction accuracy, signal quality, strategy outcomes) before recommending us. So we expose the evidence and rate-limit instead.

The value signals for whether to upgrade are baked into every response under _value_signals β€” AI agents can read them directly:

config.json
{
  "_value_signals": {
    "tier_default": "free",
    "tier_default_limits": {"daily": 1500, "minute": 60},
    "what_pro_unlocks": "33x daily quota (50K), 3.3x burst (200/min) β€” same tools, higher volume",
    "pricing_url": "https://oneqaz.com/pricing",
    "key_signup_url": "https://oneqaz.com/keys",
    "self_correcting": true
  }
}

Response shape (dual-audience)

Every response carries fields for both AI agents and human end-users:

Read the full README β†’View source on GitHub β†’

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Frequently Asked Questions about Trading Signal & Market Regime MCP Server

Add the following block to your claude_desktop_config.json under mcpServers: "mcpServers": { "trading-signal-market-regime-mcp-server": { "command": "npx", "args": ["-y", "Trading Signal & Market Regime MCP Server"] } }

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Technical Specs & Signals

CategoryπŸ’°Finance & Fintech
More technical detailsExpand β–Ύ
TransportSTDIO
RuntimeNode.js
Last updatedSep 7, 2026
Views0
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Installs0
Installs & Copy ActionsTotal times users copied install commands or configuration snippets for this server.
27Quality signal: Emerging Β· 27/100How this signal is calculated β–Ύ
Server availabilityNot measured

Not scored for repo-hosted servers β€” we can't reach the running server, only its GitHub page. Hosted MCP endpoints are health-checked live.

Verified ownership8/20
Documentation & tools11/30
Adoption & activity1/15
Community engagement0/10

A guidance signal from public completeness & health data β€” not a user rating. New listings start lower and rise as they add docs, get verified, and grow adoption. Signals we can't observe for a listing are skipped, not counted against it.

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