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The Ultimate Guide to AI-Powered Crypto Indices: How Token Metrics Is Revolutionizing Portfolio Diversification

Explore how AI-powered crypto indices by Token Metrics are changing portfolio diversification. Learn how smart analytics can simplify research, manage risk, and help you navigate the digital asset space.
Token Metrics Team
9
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The cryptocurrency sector has grown from a digital curiosity into a vast, multi-trillion-dollar ecosystem with over 20,000 tokens competing for attention. With experts forecasting that tokenized assets could represent roughly 10% of global GDP by 2027, smart, data-driven portfolio strategies are more important than ever. Yet for many, navigating such a crowded market—spotting opportunity amid noise, building true diversification, and filtering the genuine from the questionable—can feel overwhelming. This is where AI-powered crypto indices and platforms like Token Metrics come into play, redefining how individuals approach cryptocurrency portfolio construction and management.

What Are Crypto Indices and Why Do They Matter?

Crypto indices are to digital assets what the S&P 500 and Dow Jones are to stocks: baskets of cryptocurrencies assembled using defined rules, allowing users to achieve broad market exposure through a single vehicle. Rather than picking tokens one at a time, indices provide instant diversification, aggregating multiple assets while reducing the burden of continual research and helping mitigate single-token risks. This indexed approach streamlines the investment process, helping users avoid hours of individual scrutiny, and grants diversification that can buffer against market volatility.

The Diversification Advantage

Diversification is a foundational principle for managing risk, and the unique features of cryptocurrencies enhance its impact. Multiple academic studies highlight that cryptocurrencies move independently from traditional asset classes such as equities and bonds. This low correlation means that even a moderate allocation to a diversified cryptocurrency index can inject genuine diversification into a portfolio. By pooling digital assets of different sectors, use cases, and technological backgrounds, indices reduce single-token volatility while retaining potential upside from emerging trends and innovations.

Token Metrics: Pioneering AI-Driven Crypto Intelligence

Founded in 2018 in Washington, D.C., Token Metrics has built a global reputation as a leading AI-powered research platform for cryptocurrencies and NFTs. Its mission: provide actionable insights while helping filter out risky or low-quality projects. Combining expert analysts and sophisticated machine learning, Token Metrics processes data from thousands of projects—including fundamentals, on-chain metrics, source code quality, technical patterns, and community sentiment—to generate comprehensive scores and analytics. The result: more accessible, systematic, and data-driven portfolio construction.

The AI Advantage in Crypto Analysis

What sets Token Metrics apart is its integration of machine learning algorithms with deep market data. The platform's AI assesses each asset through multiple lenses: fundamental strength, technical indicators, code evaluation, sentiment analysis, and on-chain activity. Each token receives a composite score, enabling clear, quantifiable comparison. AI also allows for real-time monitoring, uncovering emerging opportunities and identifying risk factors faster and at greater scale than manual analysis allows.

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Token Metrics AI Indices: Your Gateway to Smart Crypto Investing

Token Metrics launched its AI-powered crypto indices in direct response to user demand for easy, systematic portfolio solutions. These indices aren't passive trackers; rather, they are model portfolios dynamically constructed and rebalanced using AI, tailored to different strategies and risk tolerances. Users can select portfolios focused on large-cap stability, mid-cap growth, small-cap innovation, or even sector trends like DeFi, NFTs, and AI tokens. The indices transparently show portfolio composition, performance versus benchmarks such as Bitcoin, and all rebalancing actions. This approach combines diversification with the speed and objectivity of AI-driven selection, providing a disciplined framework that adapts as markets evolve.

Rebalancing, Performance Tracking, and Strategy

Automated, systematic rebalancing is central to the Token Metrics index method. Each index adjusts its holdings based on AI-generated signals—typically weekly, monthly, or quarterly—helping preserve the desired risk profile while continually searching for new opportunities. Users can monitor historical returns, track performance relative to benchmarks, and review risk-adjusted statistics like Sharpe ratios, all with full transparency about the rationale and results behind every change. This eliminates emotion-driven decisions, allowing data to guide allocations even in volatile conditions.

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The Science Behind Crypto Portfolio Diversification

Modern Portfolio Theory (MPT) emphasizes that diversification can optimize the risk-return balance—a framework especially relevant to crypto assets, which exhibit pronounced volatility and varying correlations. Studies demonstrate that blending digital assets with traditional investments—given their low cointegration—can reduce overall portfolio risk. Within crypto, mixing large, established projects with innovative newcomers and splitting across sectors helps further stabilize returns and balance potential upside. Crypto indices serve as vehicles for implementing MPT principles at scale, allocating across market caps, sectors, and maturities for a more resilient portfolio structure.

Benefits of Investing Through Token Metrics AI Indices

1. Time Efficiency and Simplified Research
Comprehensive due diligence on individual tokens demands time and expertise. Token Metrics' AI handles the analysis behind the scenes, enabling users to access managed portfolios without constantly tracking every project or shift in sentiment.

2. Institutional-Grade Analytics for All
Leveraging advanced data aggregation from exchanges, blockchains, social networks, and news feeds, Token Metrics delivers a degree of research quality typically available only to institutional market participants. The TMAI Agent and platform resources ensure that both retail and professional users stay informed.

3. Built-In Risk Management and Scam Filtering
Token Metrics' systematic vetting, including AI evaluations of code, community, and leadership, helps weed out questionable projects. This proactive screening supports more secure index portfolios by mitigating exposure to potential frauds.

4. Automated Rebalancing
The indices adjust holdings at regular intervals, responding to market and AI signals, minimizing the pitfalls of emotional or untimely trades, and keeping focus on strategy rather than speculation.

5. Full Transparency
Each Token Metrics index clearly details its holdings, methodology, rebalancing events, and performance. This transparency empowers users to understand what they own and why, in contrast to some opaque alternatives.

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Getting Started with Token Metrics AI Indices

Access to Token Metrics' indices and analytics is available through multiple subscription tiers, each providing a range of features tailored for different expertise levels. The platform includes interactive tutorials, webinars, and educational content, supporting user onboarding and strategic learning. Portfolio customization tools, alerts, and performance dashboards help users align their allocations with their investment goals, timelines, and risk preferences. Users can further refine their approach by selecting indices aligned to their views on sectors (e.g., DeFi, Layer 2, NFTs), time horizons, and volatility tolerance.

While crypto indices can form a strong core to any digital asset strategy, most financial professionals recommend viewing crypto allocations as one part of a broader multi-asset portfolio. Token Metrics indices are structured for this integration, providing a flexible complement to holdings in stocks, bonds, or real estate and helping cushion against macroeconomic shocks specific to the crypto sector. As institutional interest accelerates, platforms like Token Metrics are refining and introducing new indices to address fresh narratives—such as sustainability, AI, or dynamic volatility management—ensuring that retail and professional users stay in step with emerging trends and technologies.

The Role of AI in Investment Management

AI is reshaping asset management by enabling faster, broader, and deeper analysis. In crypto, this transformation is magnified by the sheer number of coins, protocols, and rapid pace of innovation. Powered by machine learning, Token Metrics continually updates its methodologies and indices in response to changing dynamics, helping users gain insights, mitigate risks, and systematically pursue new opportunities as they emerge in the digital asset space.

Conclusion: Simplifying Crypto Investing Through Intelligence

The crypto landscape offers significant opportunities—but also notable challenges from volatility and complexity. Token Metrics AI Indices bridge this gap, making institutional-quality diversification and systematic management accessible for all. By fusing AI, transparent methodologies, and user education, Token Metrics helps users navigate and adapt, regardless of their starting point or experience.

The future of digital asset investing will likely favor those using advanced data and transparent, disciplined approaches. Token Metrics indices provide a robust framework, transforming crypto’s complexity into actionable intelligence for both newcomers and veterans alike.

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FAQs About AI-Powered Crypto Indices and Token Metrics

What is a crypto index?

A crypto index is a collection of cryptocurrencies grouped together to provide diversified exposure in a single package, reducing the need to research and adjust individual holdings manually.

How do Token Metrics AI Indices select assets?

Token Metrics uses machine learning and AI to analyze fundamental, technical, code, and sentiment data across thousands of digital assets. Portfolios are built based on composite scores reflecting this holistic analysis.

Is using crypto indices safer than picking individual tokens?

While all investing involves risks, diversified indices can help spread exposure across multiple coins and sectors, potentially reducing the impact of any single asset’s price swings or negative events.

Can I customize my Token Metrics index portfolios?

Yes. Token Metrics offers a range of indices for different profiles and preferences, and users can select those that align with their specific strategies, risk tolerance, or sector convictions.

How frequently are Token Metrics indices rebalanced?

Rebalancing intervals vary by index and strategy. Most indices are updated weekly, monthly, or quarterly, based on AI-driven analyses and pre-set rules to keep portfolios aligned with optimal allocation targets.

Are Token Metrics indices suitable for beginners?

Token Metrics incorporates user-friendly interfaces, tutorials, and comprehensive resources to make crypto index investing accessible to users at all experience levels.

Can I track Token Metrics index performance live?

Yes, the platform provides up-to-date performance dashboards and transparent reporting, allowing users to monitor returns and allocation changes in real time.

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Disclaimer

This content is for informational and educational purposes only. It does not constitute investment, financial, or legal advice. Users are encouraged to conduct their own research and consult with qualified professionals before making investment decisions. Past performance of any index or portfolio does not guarantee future results. Cryptocurrency investments involve significant risks, including volatility and the potential loss of principal.

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About Token Metrics
Token Metrics: AI-powered crypto research and ratings platform. We help investors make smarter decisions with unbiased Token Metrics Ratings, on-chain analytics, and editor-curated “Top 10” guides. Our platform distills thousands of data points into clear scores, trends, and alerts you can act on.
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concise market insights and “Top Picks”
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Sponsored ≠ Ratings; research remains independent
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Token Metrics Team
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Recent Posts

Research

Support and Resistance API: Auto-Calculate Smart Levels for Better Trades

Token Metrics Team
4

Most traders still draw lines by hand in TradingView. The support and resistance API from Token Metrics auto-calculates clean support and resistance levels from one request, so your dashboard, bot, or alerts can react instantly. In minutes, you’ll call /v2/resistance-support, render actionable levels for any token, and wire them into stops, targets, or notifications. Start by grabbing your key on Get API Key, then Run Hello-TM and Clone a Template to ship a production-ready feature fast.

What You’ll Build in 2 Minutes

A minimal script that fetches Support/Resistance via /v2/resistance-support for a symbol (e.g., BTC, SOL).

  • A one-liner curl to smoke-test your key.
  • A UI pattern to display nearest support, nearest resistance, level strength, and last updated time.

Next Endpoints to add

  • /v2/trading-signals (entries/exits)
  • /v2/hourly-trading-signals (intraday updates)
  • /v2/tm-grade (single-score context)
  • /v2/quantmetrics (risk/return framing)

Why This Matters

Precision beats guesswork. Hand-drawn lines are subjective and slow. The support and resistance API standardizes levels across assets and timeframes, enabling deterministic stops and take-profits your users (and bots) can trust.

Production-ready by design. A simple REST shape, predictable latency, and clear semantics let you add levels to token pages, automate SL/TP alerts, and build rule-based execution with minimal glue code.

Where to Find

Need the Support and Resistance data? The cURL request for it is in the top right of the API Reference for quick access.

👉 Keep momentum: Get API Key • Run Hello-TM • Clone a Template

How It Works (Under the Hood)

The Support/Resistance endpoint analyzes recent price structure to produce discrete levels above and below current price, along with strength indicators you can use for priority and styling. Query /v2/resistance-support?symbol=<ASSET>&timeframe=<HORIZON> to receive arrays of level objects and timestamps.

Polling vs webhooks. For dashboards, short-TTL caching and batched fetches keep pages snappy. For bots and alerts, use queued jobs or webhooks (where applicable) to avoid noisy, bursty polling—especially around market opens and major events.

Production Checklist

  • Rate limits: Respect plan caps; add client-side throttling.
  • Retries/backoff: Exponential backoff with jitter for 429/5xx; log failures.
  • Idempotency: Make alerting and order logic idempotent to prevent duplicates.
  • Caching: Memory/Redis/KV with short TTLs; pre-warm top symbols.
  • Batching: Fetch multiple assets per cycle; parallelize within rate limits.
  • Threshold logic: Add %-of-price buffers (e.g., alert at 0.3–0.5% from level).
  • Error catalog: Map common 4xx/5xx to actionable user guidance; keep request IDs.
  • Observability: Track p95/p99; measure alert precision (touch vs approach).
  • Security: Store API keys in a secrets manager; rotate regularly.

Use Cases & Patterns

  • Bot Builder (Headless): Use nearest support for stop placement and nearest resistance for profit targets. Combine with /v2/trading-signals for entries/exits and size via Quantmetrics (volatility, drawdown).
  • Dashboard Builder (Product): Add a Levels widget to token pages; badge strength (e.g., High/Med/Low) and show last touch time. Color the price region (below support, between levels, above resistance) for instant context.
  • Screener Maker (Lightweight Tools): “Close to level” sort: highlight tokens within X% of a strong level. Toggle alerts for approach vs breakout events.
  • Risk Management: Create policy rules like “no new long if price is within 0.2% of strong resistance.” Export daily level snapshots for audit/compliance.

Next Steps

  • Get API Key — generate a key and start free.
  • Run Hello-TM — verify your first successful call.
  • Clone a Template — deploy a levels panel or alerts bot today.
  • Watch the demo: Compare plans: Scale confidently with API plans.

FAQs

1) What does the Support & Resistance API return?

A JSON payload with arrays of support and resistance levels for a symbol (and optional timeframe), each with a price and strength indicator, plus an update timestamp.

2) How timely are the levels? What are the latency/SLOs?

The endpoint targets predictable latency suitable for dashboards and alerts. Use short-TTL caching for UIs, and queued jobs or webhooks for alerting to smooth traffic.

3) How do I trigger alerts or trades from levels?

Common patterns: alert when price is within X% of a level, touches a level, or breaks beyond with confirmation. Always make downstream actions idempotent and respect rate limits.

4) Can I combine levels with other endpoints?

Yes—pair with /v2/trading-signals for timing, /v2/tm-grade for quality context, and /v2/quantmetrics for risk sizing. This yields a complete decide-plan-execute loop.

5) Which timeframe should I use?

Intraday bots prefer shorter horizons; swing/position dashboards use daily or higher-timeframe levels. Offer a timeframe toggle and cache results per setting.

6) Do you provide SDKs or examples?

Use the REST snippets above (JS/Python). The docs include quickstarts, Postman collections, and templates—start with Run Hello-TM.

7) Pricing, limits, and enterprise SLAs?

Begin free and scale as you grow. See API plans for rate limits and enterprise SLA options.

Disclaimer

This content is for educational purposes only and does not constitute financial advice. Always conduct your own research before making any trading decisions.

Research

Quantmetrics API: Measure Risk & Reward in One Call

Token Metrics Team
5

Most traders see price—quants see probabilities. The Quantmetrics API turns raw performance into risk-adjusted stats like Sharpe, Sortino, volatility, drawdown, and CAGR so you can compare tokens objectively and build smarter bots and dashboards. In minutes, you’ll query /v2/quantmetrics, render a clear performance snapshot, and ship a feature that customers trust. Start by grabbing your key at Get API Key, Run Hello-TM to verify your first call, then Clone a Template to go live fast.

What You’ll Build in 2 Minutes

  • A minimal script that fetches Quantmetrics for a token via /v2/quantmetrics (e.g., BTC, ETH, SOL).
  • A smoke-test curl you can paste into your terminal.
  • A UI pattern that displays Sharpe, Sortino, volatility, max drawdown, CAGR, and lookback window.

Next Endpoints to Add

  • /v2/tm-grade (one-score signal)
  • /v2/trading-signals
  • /v2/hourly-trading-signals (timing)
  • /v2/resistance-support (risk placement)
  • /v2/price-prediction (scenario planning)

Why This Matters

Risk-adjusted truth beats hype. Price alone hides tail risk and whipsaws. Quantmetrics compresses edge, risk, and consistency into metrics that travel across assets and timeframes—so you can rank universes, size positions, and communicate performance like a professional.

Built for dev speed

A clean REST schema, predictable latency, and easy auth mean you can plug Sharpe/Sortino into bots, dashboards, and screeners without maintaining your own analytics pipeline. Pair with caching and batching to serve fast pages at scale.

Where to Find

The Quant Metrics cURL request is located in the top right of the API Reference, allowing you to easily integrate it with your application.

Build Smarter Crypto Apps & AI Agents with Token Metrics

Token Metrics provides real-time prices, trading signals, and on-chain insights all from one powerful API. Grab a Free API Key

How It Works (Under the Hood)

Quantmetrics computes risk-adjusted performance over a chosen lookback (e.g., 30d, 90d, 1y). You’ll receive a JSON snapshot with core statistics:

  • Sharpe ratio: excess return per unit of total volatility.
  • Sortino ratio: penalizes downside volatility more than upside.
  • Volatility: standard deviation of returns over the window.
  • Max drawdown: worst peak-to-trough decline.
  • CAGR / performance snapshot: geometric growth rate and best/worst periods.

Call /v2/quantmetrics?symbol=<ASSET>&window=<LOOKBACK> to fetch the current snapshot. For dashboards spanning many tokens, batch symbols and apply short-TTL caching. If you generate alerts (e.g., “Sharpe crossed 1.5”), run a scheduled job and queue notifications to avoid bursty polling.

Production Checklist

  • Rate limits: Understand your tier caps; add client-side throttling and queues.
  • Retries & backoff: Exponential backoff with jitter; treat 429/5xx as transient.
  • Idempotency: Prevent duplicate downstream actions on retried jobs.
  • Caching: Memory/Redis/KV with short TTLs; pre-warm popular symbols and windows.
  • Batching: Fetch multiple symbols per cycle; parallelize carefully within limits.
  • Error catalog: Map 4xx/5xx to clear remediation; log request IDs for tracing.
  • Observability: Track p95/p99 latency and error rates; alert on drift.
  • Security: Store API keys in secrets managers; rotate regularly.

Use Cases & Patterns

  • Bot Builder (Headless): Gate entries by Sharpe ≥ threshold and drawdown ≤ limit, then trigger with /v2/trading-signals; size by inverse volatility.
  • Dashboard Builder (Product): Add a Quantmetrics panel to token pages; allow switching lookbacks (30d/90d/1y) and export CSV.
  • Screener Maker (Lightweight Tools): Top-N by Sortino with filters for volatility and sector; add alert toggles when thresholds cross.
  • Allocator/PM Tools: Blend CAGR, Sharpe, drawdown into a composite score to rank reallocations; show methodology for trust.
  • Research/Reporting: Weekly digest of tokens with Sharpe ↑, drawdown ↓, and volatility ↓.

Next Steps

  • Get API Key — start free and generate a key in seconds.
  • Run Hello-TM — verify your first successful call.
  • Clone a Template — deploy a screener or dashboard today.
  • Watch the demo: VIDEO_URL_HERE
  • Compare plans: Scale with API plans.

FAQs

1) What does the Quantmetrics API return?

A JSON snapshot of risk-adjusted metrics (e.g., Sharpe, Sortino, volatility, max drawdown, CAGR) for a symbol and lookback window—ideal for ranking, sizing, and dashboards.

2) How fresh are the stats? What about latency/SLOs?

Responses are engineered for predictable latency. For heavy UI usage, add short-TTL caching and batch requests; for alerts, use scheduled jobs or webhooks where available.

3) Can I use Quantmetrics to size positions in a live bot?

Yes—many quants size inversely to volatility or require Sharpe ≥ X to trade. Always backtest and paper-trade before going live; past results are illustrative, not guarantees.

4) Which lookback window should I choose?

Short windows (30–90d) adapt faster but are noisier; longer windows (6–12m) are steadier but slower to react. Offer users a toggle and cache each window.

5) Do you provide SDKs or examples?

REST is straightforward (JS/Python above). Docs include quickstarts, Postman collections, and templates—start with Run Hello-TM.

6) Polling vs webhooks for quant alerts?

Dashboards usually use cached polling. For threshold alerts (e.g., Sharpe crosses 1.0), run scheduled jobs and queue notifications to keep usage smooth and idempotent.

7) Pricing, limits, and enterprise SLAs?

Begin free and scale up. See API plans for rate limits and enterprise SLA options.

Disclaimer

All information provided in this blog is for educational purposes only. It is not intended as financial advice. Users should perform their own research and consult with licensed professionals before making any investment or trading decisions.

Research

Crypto Trading Signals API: Put Bullish/Bearish Calls Right in Your App

Token Metrics Team
4

Timing makes or breaks every trade. The crypto trading signals API from Token Metrics lets you surface bullish and bearish calls directly in your product—no spreadsheet wrangling, no chart gymnastics. In this guide, you’ll hit the /v2/trading-signals endpoint, display actionable signals on a token (e.g., SOL, BTC, ETH), and ship a conversion-ready feature for bots, dashboards, or Discord. Start by creating a key on Get API Key, then Run Hello-TM and Clone a Template to go live fast.

What You’ll Build in 2 Minutes

  • A minimal script that fetches Trading Signals via /v2/trading-signals for one symbol (e.g., SOL).
  • A copy-paste curl to smoke-test your key.
  • A UI pattern to render signal, confidence/score, and timestamp in your dashboard or bot.

Endpoints to add next

  • /v2/hourly-trading-signals (intraday updates)
  • /v2/resistance-support (risk placement)
  • /v2/tm-grade (one-score view)
  • /v2/quantmetrics (risk/return context)

Why This Matters

Action over analysis paralysis. Traders don’t need more lines on a chart—they need an opinionated call they can automate. The trading signals API compresses technical momentum and regime reads into Bullish/Bearish events you can rank, alert on, and route into strategies.

Built for dev speed and reliability. A clean schema, predictable performance, and straightforward auth make it easy to wire signals into bots, dashboards, and community tools. Pair with short-TTL caching or webhooks to minimize polling and keep latency low.

Where to Find

You can find the cURL request for Crypto Trading Signals in the top right corner of the API Reference. Use it to access the latest signals!

Live Demo & Templates

  • Trading Bot Starter: Use Bullish/Bearish calls to trigger paper trades; add take-profit/stop rules with Support/Resistance.
  • Dashboard Signal Panel: Show the latest call, confidence, and last-updated time; add a history table for context.
  • Discord/Telegram Alerts: Post signal changes to a channel with a link back to your app.

How It Works (Under the Hood)

Trading Signals distill model evidence (e.g., momentum regimes and pattern detections) into Bullish or Bearish calls with metadata such as confidence/score and timestamp. You request /v2/trading-signals?symbol=<ASSET> and render the most recent event, or a small history, in your UI.

For intraday workflows, use /v2/hourly-trading-signals to update positions or alerts more frequently. Dashboards typically use short-TTL caching or batched fetches; headless bots lean on webhooks, queues, or short polling with backoff to avoid spiky API usage.

Production Checklist

  • Rate limits: Know your tier caps; add client-side throttling and queues.
  • Retries/backoff: Exponential backoff with jitter; treat 429/5xx as transient.
  • Idempotency: Guard downstream actions (don’t double-trade on retries).
  • Caching: Memory/Redis/KV with short TTLs for reads; pre-warm popular symbols.
  • Webhooks & jobs: Prefer webhooks or scheduled workers for signal change alerts.
  • Pagination/Bulk: Batch symbols; parallelize with care; respect limits.
  • Error catalog: Map common 4xx/5xx to clear fixes; log request IDs.
  • Observability: Track p95/p99 latency, error rate, and alert delivery success.
  • Security: Keep keys in a secrets manager; rotate regularly.

Use Cases & Patterns

  • Bot Builder (Headless): Route Bullish into candidate entries; confirm with /v2/resistance-support for risk and TM Grade for quality.
  • Dashboard Builder (Product): Add a “Signals” module per token; color-code state and show history for credibility.
  • Screener Maker (Lightweight Tools): Filter lists by Bullish state; sort by confidence/score; add alert toggles.
  • Community/Discord: Post signal changes with links to token pages; throttle to avoid noise.
  • Allocator/PM Tools: Track signal hit rates by sector/timeframe to inform position sizing (paper-trade first).

Next Steps

  1. Get API Key — create a key and start free.
  2. Run Hello-TM — confirm your first successful call.
  3. Clone a Template — deploy a bot, dashboard, or alerting tool today.

FAQs

1) What does the Trading Signals API return?

A JSON payload with the latest Bullish/Bearish call for a symbol, typically including a confidence/score and generated_at timestamp. You can render the latest call or a recent history for context.

2) Is it real-time? What about latency/SLOs?

Signals are designed for timely, programmatic use with predictable latency. For faster cycles, use /v2/hourly-trading-signals. Add caching and queues/webhooks to reduce round-trips.

3) Can I use the signals in a live trading bot?

Yes—many developers do. A common pattern is: Signals → candidate entry, Support/Resistance → stop/targets, Quantmetrics → risk sizing. Always backtest and paper-trade before going live.

4) How accurate are the signals?

Backtests are illustrative, not guarantees. Treat signals as one input in a broader framework with risk controls. Evaluate hit rates and drawdowns on your universe/timeframe.

5) Do you provide SDKs and examples?

You can integrate via REST using JavaScript and Python snippets above. The docs include quickstarts, Postman collections, and templates—start with Run Hello-TM.

6) Polling vs webhooks for alerts?

Dashboards often use cached polling. For bots/alerts, prefer webhooks or scheduled jobs and keep retries idempotent to avoid duplicate trades or messages.

7) Pricing, limits, and enterprise SLAs?

Begin free and scale as you grow. See API plans for allowances; enterprise SLAs and support are available.

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