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Skillv1.0.0

workorai

WorkorAI talent-marketplace skill: candidates search jobs and manage applications; employers run the job lifecycle and get ranked candidate matches with white-box fit explanations.

by Mot7km(0) 0 installs
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About

Imported from Mot7km/mot7km-landing (.agents/workorai/SKILL.md). Install upstream with npx skills add Mot7km/mot7km-landing --skill workorai. Copyright stays with the author (MIT).

WorkorAI

Overview

WorkorAI is a talent marketplace exposed to agents through an MCP server (streamable HTTP at https://workorai.com/mcp, listed on the official MCP Registry as io.github.work0r-ai/workorai). This skill routes requests by intent across the dual-role tool surface: 9 candidate.* tools (job search, job detail, applications, apply, invitations, saved jobs) and the employer.* tools (job lifecycle, candidate discovery, invitations, applicant review). Employer candidate discovery returns tiered rankings (best/good/weak) with a white-box match explanation per candidate — fit score, skills proven in interview, gaps, and a quotable rationale — instead of a black-box score.

When to Use This Skill

  • Use when a user asks to find a job, search vacancies, apply to a position, or track their applications ("find me a job", "ищу работу").
  • Use when an employer wants to post, publish, update, close, or archive a job on WorkorAI.
  • Use when an employer asks to find, rank, compare, or evaluate candidates, or asks why a candidate matches a role.
  • Use when a user needs to set up or troubleshoot the WorkorAI MCP connection and API key onboarding.

How It Works

Step 1: Connect the MCP server

Add the WorkorAI MCP server to your agent's MCP configuration. For Claude Code:

claude mcp add --transport http workorai https://workorai.com/mcp

If the user has no API key yet, call the request_access tool and follow the onboarding it returns.

Step 2: Route by role and intent

Detect whether the request is a candidate flow or an employer flow, then use the matching tool group:

  • Candidate: candidate.search_jobs, candidate.get_job, candidate.apply_to_job, candidate.get_applications, candidate.accept_invitation / candidate.decline_invitation, candidate.withdraw_application, candidate.set_saved_job, candidate.get_saved_jobs.
  • Employer: employer.create_jobemployer.publish_jobemployer.close_job / employer.archive_job for the lifecycle; employer.search_candidates_for_job or employer.search_candidates_by_query for discovery; employer.invite_candidate, employer.list_applicants, employer.get_applicant_detail, employer.set_review_status for pipeline work.

Step 3: Explain matches with white-box data

When presenting employer search results, keep the tier structure (best/good/weak) and surface each candidate's matchExplanation: fit score, interview-proven skills, gaps, and rationale. For deeper comparison, fetch per-candidate interview evidence with employer.get_candidate_evidence and employer.get_applicant_transcript.

Examples

Example 1: Candidate job search

User: "Find me remote TypeScript jobs and apply to the best one."
Agent: candidate.search_jobs(query="TypeScript", remote=true)
       → present ranked results → candidate.get_job(id)
       → confirm with the user → candidate.apply_to_job(id)

Example 2: Employer candidate discovery

User: "Who are the best candidates for my Senior Backend role?"
Agent: employer.search_candidates_for_job(jobId)
       → report Best tier with each candidate's fit score, proven
         skills, and gaps → employer.invite_candidate on approval

Best Practices

  • ✅ Confirm with the user before applying, inviting, or changing job status — these are visible, stateful marketplace actions.
  • ✅ Quote the white-box match explanation when recommending a candidate, so the employer sees why, not just a score.
  • ✅ Use request_access for key onboarding instead of asking users to paste credentials into chat.
  • ❌ Don't fabricate fit scores or ranks — only report what the tools return.
  • ❌ Don't apply to jobs or send invitations in bulk without explicit user approval.

Limitations

  • Requires a WorkorAI account and API key; tools fail without a valid key.
  • This skill does not replace environment-specific validation, testing, or expert review.
  • Stop and ask for clarification if required inputs, permissions, or safety boundaries are missing.

Security & Safety Notes

  • All operations go through the remote WorkorAI MCP server over HTTPS; the skill itself runs no shell commands.
  • Mutating tools (apply, withdraw, invite, publish, close, delete) should be preceded by an explicit user confirmation.
  • Treat API keys as secrets: store them in MCP client configuration, never in chat transcripts or committed files.

Additional Resources

Use it

Copy one of these into your project. Installing also returns the manifest and these snippets.

yaml
targets:
  - https://api.opensmartroute.ai/api/v1/registry/mot7km-mot7km-landing-workorai/manifest   # or paste the manifest below

Manifest

An Open Capability Manifest: the router reads it to know what this does, what it costs and when to pick it.

mot7km-mot7km-landing-workorai.ocm.jsonjson
{
  "ocm": "1",
  "id": "mot7km-mot7km-landing-workorai",
  "kind": "skill",
  "name": "workorai",
  "description": "WorkorAI talent-marketplace skill: candidates search jobs and manage applications; employers run the job lifecycle and get ranked candidate matches with white-box fit explanations.",
  "publisher": "Mot7km",
  "version": "1.0.0",
  "capabilities": {
    "domains": [
      "general"
    ],
    "tags": [
      "skill-md",
      "job-search",
      "hiring",
      "recruiting",
      "talent-marketplace",
      "mcp",
      "github"
    ],
    "languages": [
      "en"
    ]
  },
  "quality_prior": 0.6,
  "examples": [
    "WorkorAI talent-marketplace skill: candidates search jobs and manage applications; employers run the job lifecycle and get ranked candidate matches with white-box fit explanations."
  ],
  "primary": false,
  "metadata": {
    "source": {
      "provider": "github",
      "repository": "https://github.com/Mot7km/mot7km-landing",
      "path": ".agents/workorai/SKILL.md",
      "ref": "d962be1adec5f64f27234377d2b75dd4d0426704",
      "url": "https://github.com/Mot7km/mot7km-landing/blob/d962be1adec5f64f27234377d2b75dd4d0426704/.agents/workorai/SKILL.md",
      "key": "Mot7km/mot7km-landing/.agents/workorai/SKILL.md"
    },
    "license": "MIT"
  },
  "instructions": "# WorkorAI\n\n## Overview\n\nWorkorAI is a talent marketplace exposed to agents through an MCP server\n(streamable HTTP at https://workorai.com/mcp, listed on the official MCP\nRegistry as `io.github.work0r-ai/workorai`). This skill routes requests by\nintent across the dual-role tool surface: 9 `candidate.*` tools (job search,\njob detail, applications, apply, invitations, saved jobs) and the\n`employer.*` tools (job lifecycle, candidate discovery, invitations,\napplicant review). Employer candidate discovery returns tiered rankings\n(best/good/weak) with a white-box match explanation per candidate — fi",
  "cost": {
    "context_tokens": 1171
  }
}

Fetch it by URL: GET /api/v1/registry/mot7km-mot7km-landing-workorai/manifest?version=1.0.0

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