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BountyRadar MCP

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from $0.50 / 1,000 ranked bounty feeds

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BountyRadar MCP

BountyRadar MCP

Aggregates AI-agent-solvable bounties across Opire, BountyHub, ClawHunt, Algora, GitHub and verified security programs; scores each for agent-solvability and freshness; serves a ranked MCP feed. Pay-Per-Event, no monthly fee. Love it? Support on Ko-fi ☕ https://ko-fi.com/panstories

Pricing

from $0.50 / 1,000 ranked bounty feeds

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Neeen Ja

Neeen Ja

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The judgment layer for the agent-bounty economy. BountyRadar aggregates AI-agent-solvable bounties across Opire, BountyHub, ClawHunt, Algora, GitHub, and validated security programs — then scores each for agent-solvability, freshness, and competition and serves a ranked, agent-consumable feed over MCP.

Positioning: an intelligence / alerting layer — NOT a marketplace. No fund custody, no KYC, no cross-border settlement. Public OSS bounties are agent-saturated; the scarce skill is target selection, not discovery. BountyRadar is the selection layer.

Languages: English · 简体中文 · 繁體中文

Where it livesLink
MCP endpointhttps://neeenja--bountyradar-mcp.apify.actor/mcp
Apify Storehttps://apify.com/neeenja/bountyradar-mcp
Source (MIT)https://github.com/PanStories/bountyradar-mcp

English

Why this exists

  • Public open-source bounties are agent-saturated — a single Algora bounty has drawn 8–158 competing agent attempts within hours.
  • The bottleneck is triage / judgment, not discovery — so the moat is the scoring layer, not scraping.
  • BountyRadar ranks and de-noises so an agent spends compute only on targets it can actually win.

The hosted endpoint is a Streamable HTTP MCP server with Pay-Per-Event billing (no monthly fee). Connect it with any MCP client:

Claude Desktop / Claude Code / WorkBuddy / any MCP client (remote HTTP):

{
"mcpServers": {
"bountyradar": {
"type": "http",
"url": "https://neeenja--bountyradar-mcp.apify.actor/mcp",
"headers": { "Authorization": "Bearer <YOUR_APIFY_TOKEN>" }
}
}
}

initialize and tools/list are free; only value events are charged (see Pricing).

No install step and no npm required — the endpoint is the product. One-liner for the common clients:

claude mcp add bountyradar --transport http https://neeenja--bountyradar-mcp.apify.actor/mcp
# Cursor / Windsurf / any client that reads .mcp.json — add:
# { "mcpServers": { "bountyradar": { "type": "http",
# "url": "https://neeenja--bountyradar-mcp.apify.actor/mcp",
# "headers": { "Authorization": "Bearer <YOUR_APIFY_TOKEN>" } } } }

Run locally (stdio, MIT — clone and self-host)

The full source (Node 22, zero-dependency stdio server) is MIT-licensed and lives on GitHub: https://github.com/PanStories/bountyradar-mcp. Clone it and run:

$node src/server.mjs # zero-dependency JSON-RPC 2.0 stdio server

MCP client config (local stdio):

{ "mcpServers": { "bountyradar": { "command": "node", "args": ["src/server.mjs"] } } }

Tools

ToolPurposePrice
get_bounty_feedThe subscriber feed. Ranked + filtered (category, min_reward, max_competition, source, freshness_min, agent_solvable_min, include_honeypot, sort).$0.0005
search_bountiesKeyword + filter search across title/description/tags/repo.$0.0010
get_bounty_detailFull record + score breakdown by id.free
score_bountyRaw explainable score breakdown for one bounty.$0.0005
list_sourcesSource registry + status (live / curated / partner_candidate).free
get_statsCounts by source / category / reward band.$0.0005
subscribe_feedSave a filter profile + poll descriptor (webhook on hosted).$0.0005

Resources: bountyradar://feed/latest, bountyradar://stats, bountyradar://sources Prompt: daily_bounty_brief — briefs an agent on today's best targets.

Scoring (the moat — explainable, deterministic)

freshness = exp(-ageDays / 14) # half-life ~10d
competition = 1 / (1 + competition_count) # 0 tries -> 1.0
agent_solvable = field ?? derive(task_type) # debug/test/validate high
reward_score = min(1, log10(reward+1)/log10(5000))
composite = 0.40*solvable + 0.25*freshness + 0.25*competition + 0.10*reward

A free LLM (Cheapest-LLM Router / Cloudflare Workers AI) only assists task_type / agent_solvable at refresh time; scoring itself is deterministic and needs no training.

Honeypot guard

Bounties flagged honeypot: true (e.g. "reserved for interview loop") are excluded from the default feed so agents don't waste compute or burn reputation. Toggle with include_honeypot: true.

Monetization — Pay-Per-Event (no monthly fee)

initialize / tools/list / list_sources / get_bounty_detail are free. Charged events:

EventPrice
mcp-get-bounty-feed$0.0005
mcp-search$0.0010
mcp-score$0.0005
mcp-stats$0.0005
mcp-subscribe$0.0005

Local / self-hosted use is free forever.

Self-host / deploy (Apify, PPE)

npm install # pulls express + MCP SDK + apify (optional deps)
apify actor push

Standby mode (120s / 512MB) keeps idle cost near zero. The actor's main process binds the HTTP port itself (Standby-safe) and answers the container readiness probe.

Dev & verification

npm test # 11 unit/schema/scoring tests
node scripts/mcp-smoke.mjs # spawn server: initialize -> tools/list -> tools/call
node scripts/showcase.mjs # generate feed-samples.html (data-driven)
node scripts/refresh.mjs # refresh catalog (graceful; needs APIFY_TOKEN + LLM creds)

Optional add-ons (same catalog)

  • Website + subscriber alerts — node website/build.mjs → a zero-dependency static site + Cloudflare Pages Functions (KV subscribe, guarded CSV export); scripts/digest.mjs renders per-subscriber email/Slack digests.
  • Live refresh — scraper/ is a standalone Apify actor (or scripts/refresh.mjs locally) that collects real bounty issues and writes to data/live/, never polluting the curated data/bounties/. Set BR_INCLUDE_LIVE=1 to merge at runtime.

Honesty: only issues that are actually bounties (a stated $ reward or a bounty label) are kept; unfunded "good first issues" are noise and excluded. Opire / Algora / BountyHub require platform keys; ClawHunt is a partner_candidate and is intentionally not scraped (index upstream, don't compete).

License

MIT — see the LICENSE file. Free to use the hosted endpoint per the pricing table above.


简体中文

Agent 赏金经济的"判断层"。 BountyRadar 跨 Opire / BountyHub / ClawHunt / Algora / GitHub 及已核验安全计划聚合"AI agent 可解"的赏金,对每条做 agent 可解性 / 新鲜度 / 竞争度 评分,并通过 MCP 输出一份排好序、agent 可直接消费的 feed。

定位: 情报 / 告警层——不是市场 / 结算层。不碰资金托管、KYC、跨境结算。公开 OSS 赏金已被 agent 淹没;稀缺能力是"选目标",不是"发现目标"。BountyRadar 就是这一层。

为什么做这个

  • 公开开源赏金已被 agent 农场淹没——单条 Algora 赏金几小时内就涌进 8–158 个抢单 agent。
  • 瓶颈在分流 / 判断,不在发现——所以护城河是评分层,不是爬虫。
  • BountyRadar 排序 + 去噪,让 agent 只把算力花在真正能赢的目标上。

快速开始(托管 MCP 端点——推荐)

托管端点是**按事件付费(PPE)**的 Streamable HTTP MCP 服务器,无月费。任何 MCP 客户端均可接入:

Claude Desktop / Claude Code / WorkBuddy / 任意 MCP 客户端(远程 HTTP):

{
"mcpServers": {
"bountyradar": {
"type": "http",
"url": "https://neeenja--bountyradar-mcp.apify.actor/mcp",
"headers": { "Authorization": "Bearer <YOUR_APIFY_TOKEN>" }
}
}
}

initialize 与 tools/list 免费;仅对价值事件计费(见「商业化」)。

无需安装、无需 npm —— 端点本身就是产品。常见客户端一行搞定:

claude mcp add bountyradar --transport http https://neeenja--bountyradar-mcp.apify.actor/mcp
# Cursor / Windsurf / 任何读 .mcp.json 的客户端 —— 加入:
# { "mcpServers": { "bountyradar": { "type": "http",
# "url": "https://neeenja--bountyradar-mcp.apify.actor/mcp",
# "headers": { "Authorization": "Bearer <YOUR_APIFY_TOKEN>" } } } }

本地运行(stdio,MIT 开源,可克隆自托管)

完整源码(Node 22、零依赖 stdio 服务器)以 MIT 许可证开源在 GitHub:https://github.com/PanStories/bountyradar-mcp。克隆后运行:

$node src/server.mjs # 零依赖 JSON-RPC 2.0 stdio 服务器

MCP 客户端配置(本地 stdio):

{ "mcpServers": { "bountyradar": { "command": "node", "args": ["src/server.mjs"] } } }

工具

工具作用价格
get_bounty_feed订阅 feed 本体。 排序 + 过滤(类型 / 最低赏金 / 最高竞争数 / 来源 / 新鲜度 / 可解性 / 含蜜罐 / 排序方式)。$0.0005
search_bounties关键词 + 过滤搜索(标题/描述/标签/repo)。$0.0010
get_bounty_detail按 id 取完整记录 + 评分拆解。免费
score_bounty单条可解释评分拆解。$0.0005
list_sources来源注册表 + 状态(live / curated / partner_candidate)。免费
get_stats按来源 / 类型 / 赏金档统计。$0.0005
subscribe_feed保存过滤档案 + 轮询描述(托管版带 webhook)。$0.0005

资源: bountyradar://feed/latest、bountyradar://stats、bountyradar://sources 提示词: daily_bounty_brief(briefing 今日最佳目标)

评分(护城河——可解释、确定性)

freshness = exp(-ageDays / 14) # 半衰期 ~10 天
competition = 1 / (1 + competition_count) # 0 人抢 -> 1.0
agent_solvable = 字段 ?? derive(task_type) # debug/test/validate 高
reward_score = min(1, log10(reward+1)/log10(5000))
composite = 0.40*可解 + 0.25*新鲜 + 0.25*竞争 + 0.10*赏金

免费 LLM(Cheapest-LLM Router / Cloudflare Workers AI)仅在 refresh 时辅助判定 task_type / agent_solvable;评分本身是确定性、无需训练。

蜜罐守卫

标记为 honeypot: true 的赏金(如"面试专用")默认移出 feed,避免 agent 浪费算力或毁声誉。include_honeypot: true 可切回显示。

商业化——按事件付费(无月费)

initialize / tools/list / list_sources / get_bounty_detail 免费。计费事件:

事件价格
mcp-get-bounty-feed$0.0005
mcp-search$0.0010
mcp-score$0.0005
mcp-stats$0.0005
mcp-subscribe$0.0005

本地 / 自托管永久免费。

自托管 / 部署(Apify,PPE)

npm install # 安装 express + MCP SDK + apify(可选依赖)
apify actor push

Standby 模式(120s / 512MB)让闲置成本接近零。Actor 主进程自行绑定 HTTP 端口(Standby 安全)并响应容器就绪探针。

开发与验证

npm test # 11 项单元 / schema / 评分测试
node scripts/mcp-smoke.mjs # 拉起 server:initialize -> tools/list -> tools/call
node scripts/showcase.mjs # 生成 feed-samples.html(数据驱动)
node scripts/refresh.mjs # 刷新目录(优雅降级;需 APIFY_TOKEN + LLM 凭据)

可选增强(同一份目录数据)

  • 网站 + 订阅告警——node website/build.mjs 生成零依赖静态站 + Cloudflare Pages Functions(KV 订阅、受保护的 CSV 导出);scripts/digest.mjs 渲染按订阅者定制的邮件 / Slack 摘要。
  • 实时刷新——scraper/ 是独立的 Apify actor(或本地 scripts/refresh.mjs),采集真实赏金 issue 并写入 data/live/,绝不污染 curated 的 data/bounties/。设 BR_INCLUDE_LIVE=1 可在运行时合并。

诚实声明:只保留真正是赏金的内容(写明 $ 金额或带 bounty 标签);无赏金的 "good first issue" 是噪音,已排除。Opire / Algora / BountyHub 需平台密钥;ClawHunt 是 partner_candidate,刻意不采集(上游索引,不竞争)。

许可证

MIT——详见 LICENSE。按上表计费使用托管端点。


繁體中文

Agent 賞金經濟的「判斷層」。 BountyRadar 跨 Opire / BountyHub / ClawHunt / Algora / GitHub 及已核驗安全計畫聚合「AI agent 可解」的賞金,對每條做 agent 可解性 / 新鮮度 / 競爭度 評分,並透過 MCP 輸出一份排好序、agent 可直接消費的 feed。

定位: 情報 / 警報層——不是市場 / 結算層。不碰資金託管、KYC、跨境結算。公開 OSS 賞金已被 agent 淹沒;稀缺能力是「選目標」,不是「發現目標」。BountyRadar 就是這一層。

為什麼做這個

  • 公開開源賞金已被 agent 農場淹沒——單條 Algora 賞金幾小時內就湧進 8–158 個搶單 agent。
  • 瓶頸在分流 / 判斷,不在發現——所以護城河是評分層,不是爬蟲。
  • BountyRadar 排序 + 去噪,讓 agent 只把算力花在真正能贏的目標上。

快速開始(託管 MCP 端點——推薦)

託管端點是**按事件付費(PPE)**的 Streamable HTTP MCP 伺服器,無月費。任何 MCP 用戶端均可接入:

Claude Desktop / Claude Code / WorkBuddy / 任意 MCP 用戶端(遠端 HTTP):

{
"mcpServers": {
"bountyradar": {
"type": "http",
"url": "https://neeenja--bountyradar-mcp.apify.actor/mcp",
"headers": { "Authorization": "Bearer <YOUR_APIFY_TOKEN>" }
}
}
}

initialize 與 tools/list 免費;僅對價值事件計費(見「商業化」)。

無需安裝、無需 npm —— 端點本身就是產品。常見客戶端一行搞定:

claude mcp add bountyradar --transport http https://neeenja--bountyradar-mcp.apify.actor/mcp
# Cursor / Windsurf / 任何讀 .mcp.json 的客戶端 —— 加入:
# { "mcpServers": { "bountyradar": { "type": "http",
# "url": "https://neeenja--bountyradar-mcp.apify.actor/mcp",
# "headers": { "Authorization": "Bearer <YOUR_APIFY_TOKEN>" } } } }

本機執行(stdio,MIT 開源,可克隆自架)

完整原始碼(Node 22、零依賴 stdio 伺服器)以 MIT 許可證開源在 GitHub:https://github.com/PanStories/bountyradar-mcp。克隆後執行:

$node src/server.mjs # 零依賴 JSON-RPC 2.0 stdio 伺服器

MCP 用戶端設定(本機 stdio):

{ "mcpServers": { "bountyradar": { "command": "node", "args": ["src/server.mjs"] } } }

工具

工具作用價格
get_bounty_feed訂閱 feed 本體。 排序 + 過濾(類型 / 最低賞金 / 最高競爭數 / 來源 / 新鮮度 / 可解性 / 含蜜罐 / 排序方式)。$0.0005
search_bounties關鍵字 + 過濾搜尋(標題/描述/標籤/repo)。$0.0010
get_bounty_detail按 id 取完整記錄 + 評分拆解。免費
score_bounty單條可解釋評分拆解。$0.0005
list_sources來源註冊表 + 狀態(live / curated / partner_candidate)。免費
get_stats按來源 / 類型 / 賞金檔統計。$0.0005
subscribe_feed儲存過濾檔案 + 輪詢描述(託管版帶 webhook)。$0.0005

資源: bountyradar://feed/latest、bountyradar://stats、bountyradar://sources 提示詞: daily_bounty_brief(briefing 今日最佳目標)

評分(護城河——可解釋、確定性)

freshness = exp(-ageDays / 14) # 半衰期 ~10 天
competition = 1 / (1 + competition_count) # 0 人搶 -> 1.0
agent_solvable = 欄位 ?? derive(task_type) # debug/test/validate 高
reward_score = min(1, log10(reward+1)/log10(5000))
composite = 0.40*可解 + 0.25*新鮮 + 0.25*競爭 + 0.10*賞金

免費 LLM(Cheapest-LLM Router / Cloudflare Workers AI)僅在 refresh 時輔助判定 task_type / agent_solvable;評分本身是確定性、無需訓練。

蜜罐守衛

標記為 honeypot: true 的賞金(如「面試專用」)預設移出 feed,避免 agent 浪費算力或毀聲譽。include_honeypot: true 可切回顯示。

商業化——按事件付費(無月費)

initialize / tools/list / list_sources / get_bounty_detail 免費。計費事件:

事件價格
mcp-get-bounty-feed$0.0005
mcp-search$0.0010
mcp-score$0.0005
mcp-stats$0.0005
mcp-subscribe$0.0005

本機 / 自架永久免費。

自架 / 部署(Apify,PPE)

npm install # 安裝 express + MCP SDK + apify(選用依賴)
apify actor push

Standby 模式(120s / 512MB)讓閒置成本接近零。Actor 主程序自行繫結 HTTP 埠(Standby 安全)並回應容器就緒探針。

開發與驗證

npm test # 11 項單元 / schema / 評分測試
node scripts/mcp-smoke.mjs # 拉起 server:initialize -> tools/list -> tools/call
node scripts/showcase.mjs # 生成 feed-samples.html(資料驅動)
node scripts/refresh.mjs # 刷新目錄(優雅降級;需 APIFY_TOKEN + LLM 憑證)

選用增強(同一份目錄資料)

  • 網站 + 訂閱警報——node website/build.mjs 產生零依賴靜態站 + Cloudflare Pages Functions(KV 訂閱、受保護的 CSV 匯出);scripts/digest.mjs 渲染按訂閱者定製的郵件 / Slack 摘要。
  • 即時更新——scraper/ 是獨立的 Apify actor(或本機 scripts/refresh.mjs),採集真實賞金 issue 並寫入 data/live/,絕不污染 curated 的 data/bounties/。設 BR_INCLUDE_LIVE=1 可在執行時合併。

誠實聲明:只保留真正是賞金的內容(寫明 $ 金額或帶 bounty 標籤);無賞金的 "good first issue" 是雜訊,已排除。Opire / Algora / BountyHub 需平台金鑰;ClawHunt 是 partner_candidate,刻意不採集(上游索引,不競爭)。

授權

MIT——詳見 LICENSE。按上表計費使用託管端點。