We have successfully developed and trained a custom Large Language Model (LLM) tailored specifically for SpeedLegal's needs. This model, based on the Llama 3.2 1B architecture, has been fine-tuned on CUAD (Contract Understanding Atticus Dataset) dataset to enhance our ability to analyse and highlight critical sections of legal documents that require lawyer review.

Key Features

1.Specialised Legal Focus: Our model is trained to understand and process complex legal language and contexts.

2.Efficient and Lightweight: Built on a 1 billion parameter base model, it balances performance with computational efficiency.

3.Custom Training: Fine-tuned on our dataset of legal documents, questions, and expert-annotated answers.

4.Scalable Solution: Designed to handle a wide range of legal document types and queries.

Technical Highlights

  1. Base Model: Llama 3.2 1B, a state-of-the-art language model known for its efficiency and performance.

  2. Training Data: Utilised our self curated CUAD dataset, enhancing the model's relevance to our specific use cases.

  3. Fine-tuning Technique: Employed Parameter-Efficient Fine-Tuning (PEFT) with LoRA (Low-Rank Adaptation) for optimal performance and resource utilisation.

  4. Performance Monitoring: Integrated with Weights & Biases (wandb) for comprehensive tracking of training metrics and model performance.

Business Impact

  1. Increased Efficiency: Automates the initial review process, allowing lawyers to focus on critical sections identified by the model.

  2. Improved Accuracy: Trained on expert-annotated data, the model can identify subtle legal nuances that general-purpose models might miss.

  3. Scalability: Can process large volumes of legal documents quickly, supporting our growth and handling increased workloads.

  4. Competitive Advantage: Positions SpeedLegal at the forefront of AI-driven legal tech, offering unique value to our clients.

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