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A CLI Based AI Skill Classifier for Job Descriptions Build by Akshay Babu

Project description

Job Description Skill Classifier [JobSelect v0.12.0 & JobAnalyze 6k v1.0] (Multi-Label)

Python PyTorch scikit-learn NumPy Pandas Website Hugging Face PyPI LinkedIn PyPI Downloads

JobSelect CLI :

JobSelect CLI

Installation:

It uses:

  • TF-IDF features over the combined text (job description + role + type)
  • A PyTorch feed-forward neural network trained as a multi-label classifier
  • Per-skill thresholding for evaluation and top-k ranked probabilities for inference

What it does

  1. Data preparation (model/prep/data_prep.py)

    • Reads cleaned job description data.
    • Normalizes/repairs common skill typos (e.g., tesnorflow/pytorchtensorflow/pytorch).
    • Builds a multi-hot target vector of skills.
    • Fits a TF-IDF vectorizer (with n-grams) and splits into train/test.
    • Saves:
      • model/prep/prepared_data.npz (TF-IDF arrays + labels + indexes)
      • model/prep/vectorizer.pkl (fitted TF-IDF vectorizer)
      • model/prep/label_vocab.json (skill label vocabulary)
  2. Model training (model/model.py)

    • Loads prepared TF-IDF arrays.
    • Defines a simple MLP:
      • Linear → ReLU → Dropout → Linear (one logit per skill)
    • Trains with BCEWithLogitsLoss (multi-label setting).
    • Saves:
      • model_out/skill_classifier.pt (model weights)
      • model_out/training_history.json (train/test loss curves)
  3. Evaluation (model/eval.py)

    • Loads the trained model.
    • Applies a fixed sigmoid + threshold (0.3) to obtain binary skill predictions.
    • Reports:
      • Per-skill precision/recall/F1
      • Micro-F1 and Macro-F1
    • Compares against a simple baseline (frequency-driven / always-predict-most-frequent labels).
  4. Prediction / Inference (model/pred.py)

    • Loads the TF-IDF vectorizer and trained model.
    • Creates TF-IDF features for the input text.
    • Outputs the top-k skills by probability.

Use cases

  • Resume/job-post matching (first-pass filtering of relevant skills)
  • Job taxonomy building (discover recurring skills from postings)
  • Recruiting analytics (aggregate predicted skill demand by seniority/role/type)
  • Prototyping multi-label NLP classifiers (TF-IDF + MLP baseline)

Project structure

.
├─ data/
│  ├─ raw/
│  │  └─ Job_descriptions.csv                 # Raw input dataset
│  ├─ sample_data/
│  │  └─ test.txt                             # Example JD, Role and Type for testing
│  └─ clean/
│     ├─ cleaned_job_descriptions.csv         # Cleaned master CSV
│     ├─ cleaned_job_descriptions_internships.csv
│     ├─ cleaned_job_descriptions_junior.csv
│     └─ cleaned_job_descriptions_senior.csv
│
├─ model/
│  ├─ prep/
│  │  ├─ data_prep.py                         # TF-IDF + multi-hot label creation + train/test split
│  │  ├─ sym_map.py                           # Synonym/phrase normalization map used during prep
│  │  ├─ vectorizer.pkl                       # Saved TF-IDF vectorizer (generated by data_prep)
│  │  ├─ prepared_data.npz                    # Saved arrays (generated by data_prep)
│  │  └─ label_vocab.json                     # Skill label vocabulary (generated by data_prep)
│  │
│  ├─ model.py                                # PyTorch multi-label classifier training
│  ├─ eval.py                                 # Thresholded evaluation + F1 metrics + baseline comparison
│  └─ pred.py                                 # Predict top-k skills for new text
│
├─ model_out/
│  ├─ skill_classifier.pt                     # Trained model weights (generated by model.py)
│  └─ training_history.json                   # Training loss history (generated by model.py)
│
├─ cli/
│  ├─ jobselect.py                              # Rich terminal CLI (prompts + prints top skills)
│  ├─ model_select.py                           # Inference routing: API-first, LOCAL fallback (key resolved lazily)
│  └─ api_val.py                                # API key prompt / mode selection for CLI

│
├─ test/
│  └─ test_model.py                           # Pytest checks expected artifacts exist in model_out/ and model/prep/
│
├─ notebooks/
│  ├─ 01_EDA.ipynb                            # Exploratory Data Analysis
│  └─ 02_Data_Engineering.ipynb               # Data engineering / cleaning notes
│
├─ api/
│  ├─ JobAnalyze_API.py                       # FastAPI service + Pydantic validation + API-key verification
│  ├─ pred.py                                 # API/server-side prediction wrapper (imports model.pred)
│  └─ supabase_client.py                     # Optional API key persistence (Supabase)
│
├─ pipeline.py                                # Executes notebooks + training/eval steps in order
├─ pyproject.toml                             # Installs as a cli tool (jobselect)
├─ requirements.txt
└─ README.md

Requirements

See requirements.txt for the exact dependencies.


Getting started

1) Clone and Install dependencies

git clone https://github.com/Ak47xdd/Job-Description-Analysis.git
pip install -r requirements.txt

2) Run data preparation (optional)

This builds the TF-IDF features and label vocabulary from the cleaned CSV.

python model/prep/data_prep.py

Expected outputs:

  • model/prep/prepared_data.npz
  • model/prep/vectorizer.pkl
  • model/prep/label_vocab.json

3) Train the model (optional)

python model/model.py

Expected outputs:

  • model_out/skill_classifier.pt
  • model_out/training_history.json

4) Evaluate performance (optional)

python model/eval.py

Outputs include:

  • Per-skill metrics (precision/recall/F1)
  • Micro-F1 and Macro-F1
  • Baseline comparison

5) Predict skills for a new job description

Option A: Python function (LOCAL model) — advanced / offline use only

You can still run predictions locally if you have the prepared artifacts (model/prep/vectorizer.pkl and model_out/skill_classifier.pt). Local inference is useful for offline experimentation or development, but for most users we recommend using the hosted API (see Option C).

from api.pred import JobAnalyze_6k

data/sample_data/test.txt contains an example job description inside. Use:

JobAnalyze_6k(job_desc, role="AI Engineer", job_type="Junior", top_k=50)

Option B: Use the interactive CLI (API-first)

The CLI (cli/jobselect.py) is API-first. Provide a valid API key to run the CLI against the hosted service so you always get the up-to-date model and label set. If no API key is provided the CLI can fall back to local inference, but this is not recommended for general usage.

python -m cli.jobselect

# or after install
pip install jobselect
jobselect

The CLI:

  • prompts for Job Description, Role, and Type
  • validates them via the API schema when running in API mode
  • prints the top skills ranked by probability as returned by the hosted API

Option C: Get predictions through the hosted API (recommended)

The API is hosted and recommended for production and general use — it provides the latest model, label vocabulary, and automatic updates.

To call the hosted API, send a POST request to the hosted endpoint (replace <HOSTED_API_URL> with the actual API base URL) with the header JOBSELECT_KEY set to your API key, and a JSON body containing Job_Desc, Role, and Type.

Base URL : https://job-description-analysis.onrender.com

JOBSELECT_KEY : Vist the website (jobselect.vercel.app)

Example (curl):

curl -X POST "https://<HOSTED_API_URL>/predict" \
  -H "Content-Type: application/json" \
  -H "JobAnalyze_6k_Key: YOUR_API_KEY_HERE" \
  -d '{"Job_Desc":"Senior ML engineer with 3+ years experience...","Role":"AI Engineer","Type":"Senior"}'

The response will include ranked skills and probabilities (top-k). Contact the repository maintainer or your account admin to obtain an API key and the exact hosted API base URL.


Option D: Run the FastAPI service locally (optional)

If you prefer to host your own instance of the API, you can run the FastAPI server in api/JobAnalyze_API.py. Local hosting is useful for private deployments or testing with custom models.

Run the service and send requests with the same header and JSON body as described in Option C (JobAnalyze_6k_Key, Job_Desc, Role, Type).


How predictions work

  • Text is concatenated as: "{job_desc} {role} {job_type}"
  • TF-IDF transforms text into a fixed-size vector
  • The network outputs one logit per skill
  • Sigmoid converts logits → probabilities
  • Skills are ranked by probability and the top-k are returned

Important implementation notes

  • Multi-label learning: Each skill is treated independently (binary relevance via sigmoid + BCEWithLogitsLoss).
  • Evaluation threshold: model/eval.py uses a fixed threshold of 0.3. For production use, you may want per-label thresholds tuned on a validation set.
  • Dataset size: The included notebooks and evaluation code suggest the dataset may be small; results can be limited by label frequency and data coverage.

New features / capabilities

  • Rich terminal CLI (cli/jobselect.py) using rich + pyfiglet for interactive top-skill display.
  • API validation + schema enforcement
    • Input validation via Pydantic model constraints in api/JobAnalyze_API.py.
    • API key auth via header + secure verification, with optional Supabase-backed storage in api/supabase_client.py.
    • CLI mode auto-detection (cli/api_val.py + cli/model_select.py): uses API when a key is available, otherwise falls back to local inference.
  • Synonym/phrase normalization hook (model/prep/sym_map.py) applied during data preparation.
  • Pipeline runner (pipeline.py) to execute notebooks and training steps in sequence.

Customization ideas

  • Improve text cleaning and skill normalization in data_prep.py
  • Tune TF-IDF parameters (max_features, ngram_range, min_df)
  • Replace the simple MLP with a stronger baseline (e.g., logistic regression on TF-IDF)
  • Calibrate thresholds per label using validation data
  • Add a CLI or web service endpoint for prediction


Author

Developed with ❤️ by Akshay Babu

LinkedIn GitHub

For questions, feedback, or collaboration opportunities, feel free to reach out!


References / Inspiration

This repository follows a common pattern for multi-label NLP baselines: TF-IDF features + a simple neural network + sigmoid-based multi-label outputs.

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