Transportation Spend Analyzer
SkillDev toolsFreight spend analysis and benchmarking skill for cost optimization and carrier negotiation support
Instructions available. Your AI can read the instructions. Execution depends on the setup they require.
Account requirements not reviewed. Check the skill instructions before use; ahel provides instructions and does not run this skill.
Add ahel to your AI once: Claude, ChatGPT, Cursor, Claude Code or Codex. Then ask it to use this.
Then ask your AI: use the Transportation Spend Analyzer skill
What this skill tells your AI
The instructions your AI receives, as published by a5c-ai/babysitter in library/specializations/domains/business/logistics/skills/transportation-spend-analyzer/SKILL.md and read by ahel’s review.
Overview
The Transportation Spend Analyzer provides comprehensive freight spend analysis and benchmarking capabilities for cost optimization and carrier negotiation support. It analyzes spend patterns, identifies savings opportunities, and provides market intelligence for strategic procurement decisions.
Capabilities
- Spend Cube Analysis: Analyze transportation spend across dimensions including lane, carrier, mode, and time
- Lane-Level Rate Benchmarking: Compare rates against market benchmarks at the lane level
- Accessorial Cost Breakdown: Analyze accessorial charges and identify reduction opportunities
- Mode Optimization Opportunity Identification: Identify opportunities to shift freight to more cost-effective modes
- Contract vs. Spot Analysis: Compare performance and cost of contract versus spot shipments
- Carrier Performance Cost Correlation: Correlate carrier costs with service performance metrics
- Savings Opportunity Quantification: Quantify potential savings from identified optimization opportunities
Tools and Libraries
- Spend Analysis Tools
- Benchmarking Databases (DAT, Chainalytics)
- TMS Analytics
- Data Visualization Libraries
Used By Processes
- Carrier Selection and Procurement
- Freight Audit and Payment
- Route Optimization
Usage
skill: transportation-spend-analyzer
inputs:
analysis_period:
start: "2025-01-01"
end: "2025-12-31"
spend_data:
total_shipments: 45000
total_spend: 28500000
modes:
truckload: 18000000
ltl: 6500000
parcel: 3000000
intermodal: 1000000
benchmark_sources:
- "dat_rate_view"
- "industry_benchmarks"
focus_areas:
- "top_lanes"
- "accessorial_charges"
- "mode_optimization"
outputs:
spend_analysis:
total_spend: 28500000
spend_per_shipment: 633.33
year_over_year_change: 4.2
spend_by_mode:
truckload: { spend: 18000000, percent: 63.2 }
ltl: { spend: 6500000, percent: 22.8 }
parcel: { spend: 3000000, percent: 10.5 }
intermodal: { spend: 1000000, percent: 3.5 }
top_lanes_analysis:
- lane: "Chicago to Los Angeles"
spend: 2100000
shipments: 1200
avg_rate: 1750
benchmark_rate: 1680
variance_percent: 4.2
opportunity: 84000
- lane: "Dallas to Atlanta"
spend: 1850000
shipments: 2100
avg_rate: 881
benchmark_rate: 850
variance_percent: 3.6
opportunity: 65100
accessorial_analysis:
total_accessorials: 3200000
percent_of_spend: 11.2
top_accessorials:
- type: "fuel_surcharge"
amount: 1800000
percent_of_accessorials: 56.3
- type: "detention"
amount: 450000
percent_of_accessorials: 14.1
benchmark_percent: 8.0
opportunity: 195000
savings_opportunities:
- category: "lane_rate_optimization"
potential_savings: 425000
implementation_effort: "medium"
timeline: "3-6 months"
- category: "accessorial_reduction"
potential_savings: 320000
implementation_effort: "low"
timeline: "1-3 months"
- category: "mode_shift_to_intermodal"
potential_savings: 280000
implementation_effort: "high"
timeline: "6-12 months"
total_savings_potential: 1025000
Integration Points
- Transportation Management Systems (TMS)
- Financial Systems
- Carrier Rate Systems
- Market Benchmarking Services
- Business Intelligence Platforms
Performance Metrics
- Spend per unit shipped
- Cost vs. benchmark variance
- Accessorial cost percentage
- Savings captured
- Mode optimization rate
Signals
- GitHub stars
- 2k
- Forks
- 112
- Last commit
- Sep 2026
Advanced
- Item type
- skill
- Key
transportation-spend-analyzer- Source
- github.com/a5c-ai/babysitter
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