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train.yaml
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# FFT config for Llama 70B.
# Borrows param values from:
# https://github.com/pytorch/torchtune/blob/main/recipes/configs/llama3_1/70B_full.yaml
#
# Strongly recommend downloading the model first:
# HF_HUB_ENABLE_HF_TRANSFER=1 huggingface-cli download meta-llama/Meta-Llama-3.1-70B-Instruct --exclude original/*
#
# Usage:
# oumi train -c configs/recipes/llama3_1/sft/70b_full/train.yaml
#
# Command to run locally on a single-node 8xA100-80GB machine:
# oumi distributed torchrun -m oumi train -c configs/recipes/llama3_1/sft/70b_full/train.yaml
#
# See Also:
# - Documentation: https://oumi.ai/docs/en/latest/user_guides/train/train.html
# - Config class: oumi.core.configs.TrainingConfig
# - Config source: https://github.com/oumi-ai/oumi/blob/main/src/oumi/core/configs/training_config.py
# - Other training configs: configs/**/pretraining/, configs/**/sft/, configs/**/dpo/
model:
model_name: "meta-llama/Meta-Llama-3.1-70B-Instruct"
model_max_length: 2048
torch_dtype_str: "bfloat16"
attn_implementation: "sdpa"
load_pretrained_weights: True
trust_remote_code: True
data:
train:
datasets:
- dataset_name: "yahma/alpaca-cleaned" # 51,760 examples
target_col: "prompt"
use_async_dataset: True
training:
trainer_type: "TRL_SFT"
save_steps: 200
num_train_epochs: 1
per_device_train_batch_size: 7
gradient_accumulation_steps: 1
enable_gradient_checkpointing: True
gradient_checkpointing_kwargs:
use_reentrant: False
ddp_find_unused_parameters: False
optimizer: "adamw_torch_fused"
learning_rate: 2.0e-05
compile: False
dataloader_num_workers: "auto"
dataloader_prefetch_factor: 32
logging_steps: 100
log_model_summary: False
empty_device_cache_steps: 50
output_dir: "output/llama70b.fft"
include_performance_metrics: True
enable_wandb: True
fsdp:
enable_fsdp: True
cpu_offload: True
forward_prefetch: True
state_dict_type: "SHARDED_STATE_DICT"
auto_wrap_policy: "TRANSFORMER_BASED_WRAP"
transformer_layer_cls: "LlamaDecoderLayer"