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aimeri/spoomples-qwen3-14b-v0.2

sourceHugging Faceapache-2.0updated 7mo agoView on Hugging Face
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Model Card

SpoomplesMaxx — Qwen3 14B SFT

A 14B language model built on Qwen3-14B through a multi-stage training pipeline: Continued Pre-Training (CPT) → Supervised Fine-Tuning (SFT). This is the SFT checkpoint. DPO alignment has not yet been applied.

What is this?

SpoomplesMaxx is an experiment in training a persona-consistent model from scratch rather than fine-tuning an existing instruct model. The goal is full control over voice, format, and behavior by building up from a base model.

The CPT stage (spoomplesmaxx-base-qwen3-14b) injected domain knowledge from character cards, literary prose, and specialized text. This SFT stage teaches instruction-following and conversation using a custom chat format.

Chat Format (DanChat)

The model uses a custom token format:

<|system|>system prompt<|endoftext|>
<|user|>user message<|endoftext|>
<|assistant|>response<|endoftext|>
  • —<|system|> — System/roleplay instructions
  • —<|user|> / <|assistant|> — Conversation turns
  • —<|endoftext|> — Segment terminator

Training Data

The SFT mix is a weighted blend of several categories:

CategoryFocus~Weight
Roleplay & Creative WritingCharacter RP, adventure, scenario-based dialogue28%
NSFWExplicit roleplay and creative content22%
Tasks & InstructionsTool use, function calling, general assistant tasks17%
Reasoning & LogicMath, logic, theory of mind, physical reasoning16%
Persona VoiceOlivia persona reinforcement12%
Specialized KnowledgeSurvival, operations, tactical scenarios5%

Olivia

The model includes training data transformed into the voice of Olivia, a reference persona: a 31-year-old Brazilian zoologist turned ML hobbyist. She's warm but direct, uses grounded analogies, and occasionally slips into Portuguese when frustrated.

Olivia is a proof of concept for persona consistency — demonstrating that voice can be trained in rather than prompted for. You don't have to use the Olivia persona; the model responds to whatever system prompt you provide.

Intended Use

  • —Roleplay and character-driven conversation
  • —Creative and narrative writing
  • —Reasoning and problem-solving tasks
  • —Instruction following and tool use - but expect significant degradation when compared to models optimized for this task

Limitations

  • —This is an SFT checkpoint without preference alignment (DPO). Outputs may not always match user expectations for tone or safety.
  • —The model was trained with a specific data mix and custom format. Results with other chat templates may vary.
  • —No formal benchmarks have been run. Evaluate on your own use cases.

Details

  • —Architecture: Qwen3-14B (14B dense)
  • —Base model: aimeri/spoomplesmaxx-base-qwen3-14b (CPT checkpoint)
  • —Context: Up to 128K tokens (inherited from Qwen3 but trained on a max of 32K tokens)
  • —Developer: aimeri