Policy-driven candidate ranking and scenario decision intelligence for protein progression and portfolio prioritization
Project description
bijux-proteomics-intelligence
Package Family
bijux-proteomics-intelligence transforms program intent and evidence posture
into policy-governed candidate rankings, scenario recommendations, and
decision outputs with explicit explainability and risk signals.
Use this package when you need transparent prioritization logic, rejection reasoning, and portfolio-aware progression guidance for protein design.
Why teams pick this package
- policy-first ranking and recommendation outputs with traceable decision rationale
- scenario evaluators that support progression, redesign, and portfolio balancing
- structured rejection reasons and explainability fields for review conversations
- deterministic scoring patterns suitable for governance and automation
Typical use cases
- rank candidate proteins against defined decision policies
- generate scenario recommendations for advancement or redesign
- produce explainable shortlists for expert review boards
- aggregate portfolio-level signals for sequencing and prioritization
Installation
pip install bijux-proteomics-intelligence
Quick start
from bijux_proteomics_intelligence import briefs, policies, evaluators
Package boundaries
This package owns decision intelligence, ranking policy, scenario scoring, and explainability outputs.
It does not own stage transition authority, evidence ingestion contracts, or lab execution scheduling.
Source guide
src/bijux_proteomics_intelligence/briefs.pyfor design brief construction and ranking behaviorsrc/bijux_proteomics_intelligence/policies.pyfor ranking and decision policy modelssrc/bijux_proteomics_intelligence/evaluators.pyfor scenario and portfolio evaluatorstestsfor executable behavior expectations
Documentation
Project details
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