sunbird_salt_docs / README.md
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metadata
license: mit
task_categories:
  - question-answering
language:
  - en
tags:
  - sunbird
  - sunbirdai
pretty_name: Sunbird Salt Documentation
size_categories:
  - n<1K
configs:
  - config_name: default
    data_files:
      - split: train
        path: chunks/*.json

COCIS WEB INFO

Dataset Summary

This dataset contains text chucks scraped from its official website and corresponding websites. The dataset consists of JSON chunks, designed for high-performance streaming and parallel processing. Each chunk represents a discrete unit of data structured for machine learning tasks.

By sharding the data into chuck files, this repository supports the datasets library's streaming mode, allowing users to train models without downloading the entire dataset into RAM—a critical feature for resource-constrained environments or high-concurrency CI/CD pipelines.

Repository Structure

The data is organized into a chunks/ directory to maintain a clean root level:

.
├── README.md          # This file
└── chunks/            # Directory containing JSON files
    ├── chunk_1.json
    ├── chunk_2.json
    └── ...

Usage

You can load this dataset directly using the Hugging Face datasets library:

from datasets import load_dataset

# Standard loading
dataset = load_dataset("jimjunior/sunbird_salt_docs")

# Streaming mode (Recommended for many shards)
streamed_dataset = load_dataset("jimjunior/sunbird_salt_docs", streaming=True)
print(next(iter(streamed_dataset["train"])))

Maintenance and Contributions

This dataset was created as part of the Sunbird AI Internship 2026. Its actively mantained by Beingana Jim Junior.