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技能内容

Business Investment Advisor Skill

Overview

Production-ready investment analysis toolkit for screening opportunities, analyzing portfolio composition, and generating due diligence checklists. Designed for business owners, angel investors, and corporate development teams evaluating investments from $50K to $50M.

Clarify First

Before the analysis, confirm these inputs. If any is unknown or vague, ASK — do not assume:

  • [ ] Which task — screen opportunities, analyze a portfolio, or generate a DD checklist (selects the script and the required input JSON)
  • [ ] Screening thresholds — minimum ROI, maximum payback, and acceptable risk level (drives which opportunities pass and how they rank)
  • [ ] Target profile for DD — investment type, stage, and check size (drives which items and weights the due-diligence checklist generates)
  • [ ] Risk tolerance / concentration limits — max exposure per holding or sector (drives portfolio rebalancing recommendations)

Stop rule: ask only the 2-3 that most change the output. If the user says "just draft it," proceed and list your assumptions at the top of the artifact.

Quick Start

# Screen investments by criteria (ROI, risk, payback)
python scripts/investment_screener.py opportunities.json --min-roi 15 --max-payback 36

# Analyze portfolio diversification and risk exposure
python scripts/portfolio_analyzer.py portfolio.json

# Generate due diligence checklist for an investment target
python scripts/due_diligence_checklist.py --type saas --stage series-a --amount 500000

Tools Overview

| Tool | Purpose | Input | Output |

|------|---------|-------|--------|

| investment_screener.py | Filter & rank investments | JSON with opportunity data | Ranked opportunities + scores |

| portfolio_analyzer.py | Portfolio risk & diversification | JSON with holdings | Risk report + recommendations |

| due_diligence_checklist.py | DD checklist generation | Investment parameters | Structured checklist + scoring |

Workflows

Workflow 1: Opportunity Evaluation Pipeline

  1. Compile investment opportunities into JSON format (see Common Patterns)
  2. Run investment_screener.py with your criteria filters
  3. Review ranked results focusing on composite score
  4. For top candidates, run due_diligence_checklist.py to generate investigation plan
  5. After DD completion, update portfolio model and run portfolio_analyzer.py

Workflow 2: Portfolio Health Check

  1. Export current holdings to JSON format
  2. Run portfolio_analyzer.py to assess diversification
  3. Review concentration risk, sector exposure, and liquidity analysis
  4. Use recommendations to identify rebalancing opportunities
  5. Screen new opportunities with investment_screener.py to fill gaps

Workflow 3: Due Diligence Sprint

  1. Run due_diligence_checklist.py with target parameters
  2. Assign checklist items to team members with deadlines
  3. Score each item as investigation progresses (0-10)
  4. Re-run with --score-file to get weighted DD score
  5. Use composite score to support go/no-go decision

Reference Documentation

See references/investment-frameworks.md for detailed frameworks including:

  • Investment scoring methodology
  • Risk assessment matrix
  • Portfolio diversification guidelines
  • Due diligence phase frameworks
  • Industry-specific evaluation criteria

Common Patterns

Pattern: Investment Opportunities JSON

{
  "opportunities": [
    {
      "name": "TechCo SaaS",
      "type": "equity",
      "sector": "technology",
      "stage": "series-a",
      "amount": 250000,
      "expected_roi_pct": 25.0,
      "risk_level": "high",
      "payback_months": 36,
      "revenue": 1200000,
      "revenue_growth_pct": 85.0,
      "gross_margin_pct": 78.0,
      "burn_rate_monthly": 80000,
      "runway_months": 18
    }
  ]
}

Pattern: Portfolio Holdings JSON

{
  "portfolio": {
    "total_invested": 2000000,
    "holdings": [
      {
        "name": "Investment A",
        "type": "equity",
        "sector": "technology",
        "invested": 250000,
        "current_value": 375000,
        "date_invested": "2024-06-15",
        "stage": "series-a",
        "liquidity": "illiquid",
        "status": "active"
      }
    ]
  }
}

Risk Level Definitions

| Level | Expected Return | Loss Probability | Typical Payback |

|-------|----------------|-----------------|-----------------|

| Low | 5-10% | < 10% | < 24 months |

| Medium | 10-20% | 10-30% | 24-48 months |

| High | 20-40% | 30-50% | 36-60 months |

| Very High | 40%+ | > 50% | 48+ months |

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