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Model: Harsh-k-007/fitcoach-3b
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---
license: llama3.2
base_model: unsloth/Llama-3.2-3B-Instruct-bnb-4bit
library_name: transformers
tags:
- sft
- trl
- unsloth
- fitness
- nutrition
- coaching
- conversational
- merged
datasets:
- Harsh-k-007/fitcoach-conversations
pipeline_tag: text-generation
---
# FitCoach 3B (Merged, fp16)
A fully merged, full-precision (fp16) fine-tune of Llama 3.2 3B Instruct, acting as
**FitCoach** — a conversational fitness and nutrition intake coach. This is the
lightweight option in the FitCoach model family, alongside the
[8B LoRA adapter](https://huggingface.co/Harsh-k-007/fitcoach-8b-adapter).
Try it live: [FitCoach Space](https://huggingface.co/spaces/Harsh-k-007/fitcoach)
## Model Details
- **Base model:** `unsloth/Llama-3.2-3B-Instruct-bnb-4bit` (loaded in 4-bit for
training via Unsloth, then merged to 16-bit for deployment)
- **Format:** merged weights, fp16 — no adapter required, load directly
- **Adapter (during training):** LoRA, rank 16, alpha 16, dropout 0, targeting all
attention and MLP projection layers (`q/k/v/o_proj`, `gate/up/down_proj`)
- **Training framework:** Unsloth `FastLanguageModel` + TRL `SFTTrainer`
- **Training data:** [`Harsh-k-007/fitcoach-conversations`](https://huggingface.co/datasets/Harsh-k-007/fitcoach-conversations)
— 1,407 synthetic coaching conversations (95/5 train/eval split for this run)
- **Sequence length:** 2048 tokens, with sequence packing (`bfd` strategy)
- **Precision:** bf16 training on a single T4 GPU (Google Colab free tier)
- **Epochs:** 2, effective batch size 8 (2 × 4 grad accumulation), cosine LR
schedule, peak LR 2e-4
## Intended Use
FitCoach is a **conversational intake coach** for fitness and nutrition. Given a
user's goal, it asks **one question at a time** to gather the relevant context, then
generates a structured plan.
Scope is intentionally narrow:
- **Meal plans** (~60% of training data): collects goal, age/height/weight, dietary
restrictions, activity level
- **Workout plans** (~40% of training data): collects goal, experience level, days
per week, equipment access
The 3B model is intended as a **lighter, faster** alternative to the 8B adapter —
useful where latency or memory matters more than maximum response quality.
### Out of scope
- Injuries, medical conditions, or any medical advice
- Macro/calorie arithmetic — the model can *describe* macro targets conceptually but
is **not reliable at computing them**; treat any numeric macro breakdown as
approximate, not verified
- Unprompted macro generation — the model does not currently generate macros unless
explicitly asked (known dataset gap, planned for v2)
## How to Use
```python
from transformers import AutoModelForCausalLM, AutoTokenizer
import torch
model_id = "Harsh-k-007/fitcoach-3b"
tokenizer = AutoTokenizer.from_pretrained(model_id)
tokenizer.pad_token = "<|finetune_right_pad_id|>"
model = AutoModelForCausalLM.from_pretrained(
model_id,
dtype=torch.float16,
device_map="auto",
)
model.eval()
messages = [
{"role": "system", "content": "You are FitCoach, a friendly fitness and nutrition coach."},
{"role": "user", "content": "Create a simple fat-loss meal plan with Indian food options."},
]
encoded = tokenizer.apply_chat_template(messages, add_generation_prompt=True, return_tensors="pt")
input_ids = encoded["input_ids"] if hasattr(encoded, "keys") else encoded
input_ids = input_ids.to(model.device)
output = model.generate(
input_ids,
max_new_tokens=512,
do_sample=True,
temperature=0.7,
top_p=0.9,
pad_token_id=128004,
)
print(tokenizer.decode(output[0][input_ids.shape[-1]:], skip_special_tokens=True))
```
## Training Procedure
- **Method:** Supervised fine-tuning (SFT) with TRL `SFTTrainer`, using Unsloth's
`FastLanguageModel` for memory-efficient LoRA training (gradient checkpointing via
`use_gradient_checkpointing="unsloth"`), then merged to full precision via
`save_pretrained_merged(..., save_method="merged_16bit")`
- **Loss:** full-conversation loss (`train_on_responses_only` / assistant-only
masking was not applied in this run — a documented future optimization once
reliably supported for the Llama 3 chat template)
- **Chat template:** Llama 3.2 (`unsloth.chat_templates.get_chat_template`)
- **Optimizer:** `adamw_8bit`, weight decay 0.01, cosine schedule, 17 warmup steps
- **Hardware:** Google Colab T4 (free tier), with Drive checkpointing for
resumability across the 90-minute idle / 12-hour session limits
## Known Limitations
- **Macro arithmetic is hallucinated.** The model isn't reliable at computing
calorie/macro numbers. A v2 release plans to add a calculator/tool layer for this.
- **Macros aren't generated unprompted.** The dataset under-represents this, so the
model needs to be asked explicitly. Planned fix for v2 via dataset augmentation.
- **No assistant-only loss** in this training run (see above).
- As the smaller model in the family, expect slightly less consistent intake
behavior and plan structure compared to the 8B adapter.
## Citation
If you use this model, please link back to this repo and the
[training dataset](https://huggingface.co/datasets/Harsh-k-007/fitcoach-conversations).

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{{- bos_token }}
{%- if custom_tools is defined %}
{%- set tools = custom_tools %}
{%- endif %}
{%- if not tools_in_user_message is defined %}
{%- set tools_in_user_message = true %}
{%- endif %}
{%- if not date_string is defined %}
{%- set date_string = "26 July 2024" %}
{%- endif %}
{%- if not tools is defined %}
{%- set tools = none %}
{%- endif %}
{#- This block extracts the system message, so we can slot it into the right place. #}
{%- if messages[0]['role'] == 'system' %}
{%- set system_message = messages[0]['content'] %}
{%- set messages = messages[1:] %}
{%- else %}
{%- set system_message = "" %}
{%- endif %}
{#- System message + builtin tools #}
{{- "<|start_header_id|>system<|end_header_id|>
" }}
{%- if builtin_tools is defined or tools is not none %}
{{- "Environment: ipython
" }}
{%- endif %}
{%- if builtin_tools is defined %}
{{- "Tools: " + builtin_tools | reject('equalto', 'code_interpreter') | join(", ") + "
"}}
{%- endif %}
{{- "Cutting Knowledge Date: December 2023
" }}
{{- "Today Date: " + date_string + "
" }}
{%- if tools is not none and not tools_in_user_message %}
{{- "You have access to the following functions. To call a function, please respond with JSON for a function call." }}
{{- 'Respond in the format {"name": function name, "parameters": dictionary of argument name and its value}.' }}
{{- "Do not use variables.
" }}
{%- for t in tools %}
{{- t | tojson(indent=4) }}
{{- "
" }}
{%- endfor %}
{%- endif %}
{{- system_message }}
{{- "<|eot_id|>" }}
{#- Custom tools are passed in a user message with some extra guidance #}
{%- if tools_in_user_message and not tools is none %}
{#- Extract the first user message so we can plug it in here #}
{%- if messages | length != 0 %}
{%- set first_user_message = messages[0]['content'] %}
{%- set messages = messages[1:] %}
{%- else %}
{{- raise_exception("Cannot put tools in the first user message when there's no first user message!") }}
{%- endif %}
{{- '<|start_header_id|>user<|end_header_id|>
' -}}
{{- "Given the following functions, please respond with a JSON for a function call " }}
{{- "with its proper arguments that best answers the given prompt.
" }}
{{- 'Respond in the format {"name": function name, "parameters": dictionary of argument name and its value}.' }}
{{- "Do not use variables.
" }}
{%- for t in tools %}
{{- t | tojson(indent=4) }}
{{- "
" }}
{%- endfor %}
{{- first_user_message + "<|eot_id|>"}}
{%- endif %}
{%- for message in messages %}
{%- if not (message.role == 'ipython' or message.role == 'tool' or 'tool_calls' in message) %}
{{- '<|start_header_id|>' + message['role'] + '<|end_header_id|>
'+ message['content'] + '<|eot_id|>' }}
{%- elif 'tool_calls' in message %}
{%- if not message.tool_calls|length == 1 %}
{{- raise_exception("This model only supports single tool-calls at once!") }}
{%- endif %}
{%- set tool_call = message.tool_calls[0].function %}
{%- if builtin_tools is defined and tool_call.name in builtin_tools %}
{{- '<|start_header_id|>assistant<|end_header_id|>
' -}}
{{- "<|python_tag|>" + tool_call.name + ".call(" }}
{%- for arg_name, arg_val in tool_call.arguments | items %}
{{- arg_name + '="' + arg_val + '"' }}
{%- if not loop.last %}
{{- ", " }}
{%- endif %}
{%- endfor %}
{{- ")" }}
{%- else %}
{{- '<|start_header_id|>assistant<|end_header_id|>
' -}}
{{- '{"name": "' + tool_call.name + '", ' }}
{{- '"parameters": ' }}
{{- tool_call.arguments | tojson }}
{{- "}" }}
{%- endif %}
{%- if builtin_tools is defined %}
{#- This means we're in ipython mode #}
{{- "<|eom_id|>" }}
{%- else %}
{{- "<|eot_id|>" }}
{%- endif %}
{%- elif message.role == "tool" or message.role == "ipython" %}
{{- "<|start_header_id|>ipython<|end_header_id|>
" }}
{%- if message.content is mapping or message.content is iterable %}
{{- message.content | tojson }}
{%- else %}
{{- message.content }}
{%- endif %}
{{- "<|eot_id|>" }}
{%- endif %}
{%- endfor %}
{%- if add_generation_prompt %}
{{- '<|start_header_id|>assistant<|end_header_id|>
' }}
{%- endif %}

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{
"architectures": [
"LlamaForCausalLM"
],
"attention_bias": false,
"attention_dropout": 0.0,
"bos_token_id": 128000,
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"mlp_bias": false,
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"num_hidden_layers": 28,
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"low_freq_factor": 1.0,
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"rope_type": "llama3"
},
"tie_word_embeddings": true,
"unsloth_fixed": true,
"unsloth_version": "2026.5.10",
"use_cache": false,
"vocab_size": 128256
}

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"do_sample": true,
"eos_token_id": [
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