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Jobbert Knowledge Extraction

Developed by jjzha
SkillSpan is a model designed for extracting hard and soft skills from English job postings, based on the BERT architecture with domain adaptation optimizations.
Downloads 1,748
Release Time : 4/6/2023

Model Overview

This model is specifically designed for skill extraction tasks, capable of identifying and classifying hard and soft skills from job postings, providing data support for labor market analysis.

Model Features

Expert-Annotated Dataset
Uses the SKILLSPAN dataset, containing 14.5K sentences and 12.5K annotated segments, with annotation guidelines created by domain experts.
Domain Adaptation Optimization
Employs continual pre-training in the job posting domain, significantly improving model performance.
Skill Classification Capability
Can distinguish between hard skills, soft skills, and application skills.

Model Capabilities

Text Information Extraction
Skill Classification
Job Posting Analysis

Use Cases

HR Technology
Automatic Job Description Analysis
Automatically extracts required skills from job advertisements.
Helps companies quickly understand the skill sets required for positions.
Labor Market Analysis
Analyzes skill demand trends in job postings on a large scale.
Provides data support for vocational training and talent development.
Career Development
Resume Optimization Suggestions
Provides resume optimization suggestions for job seekers based on skill requirements in job postings.
Helps job seekers better match job requirements.
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