compare/Qwen2.5-Coder-32b-InstructvsQwen3-Embedding-0.6b

Qwen2.5-Coder-32b-Instruct vs Qwen3-Embedding-0.6b

Pricing, context window, capabilities, and release date — pulled from each provider's public docs. Both are available via the same AIgateway OpenAI-compatible endpoint; flip the model string to switch.

RUN BOTH LIVE

Paste a prompt. Watch them race.

Both models stream in parallel through your own AIgateway key. Tokens, latency, and cost update as they arrive.

Sign in to runLive streaming uses your own key. It's free to sign up.
 Qwen2.5-Coder-32b-Instruct
qwen/qwen2.5-coder-32b-instruct
Qwen3-Embedding-0.6b
qwen/qwen3-embedding-0.6b
ProviderAlibaba QwenAlibaba Qwen
FamilyQwenQwen
Modalitytextembedding
Context window32,768 tok8,192 tok
Max output4,096 tok
Released2025-02-272025-06-18
Input price$0.660 /1M$0.012 /1M
Output price$1.00 /1M
Cache read
Toolsyes
Streamingyes
Vision
JSON modeyes
Reasoning
Prompt caching
Qwen2.5-Coder-32b-Instruct
qwen/qwen2.5-coder-32b-instruct
Full spec →

Qwen2.5-Coder is the latest series of Code-Specific Qwen large language models (formerly known as CodeQwen). As of now, Qwen2.5-Coder has covered six mainstream model sizes, 0.5, 1.5, 3, 7, 14, 32 billion parameters, to meet the needs of different developers. Qwen2.5-Coder brings the following improvements upon CodeQwen1.5:

Strengths
  • Code-tuned
  • Tool calling
  • Multi-lingual code
Qwen3-Embedding-0.6b
qwen/qwen3-embedding-0.6b
Full spec →

The Qwen3 Embedding model series is the latest proprietary model of the Qwen family, specifically designed for text embedding and ranking tasks.

Strengths
  • Semantic similarity
  • Vector search
SWITCH BETWEEN THEM

One key, both models, one line different.

# pip install aigateway-py openai
# aigateway-py: sub-accounts, evals, replays, jobs, webhook verify.
# openai SDK: chat/embeddings/images/audio — drop-in compat per our SDK's own guidance.
from openai import OpenAI

client = OpenAI(
    base_url="https://api.aigateway.sh/v1",
    api_key="sk-aig-...",
)

# Try Qwen2.5-Coder-32b-Instruct
client.chat.completions.create(
    model="qwen/qwen2.5-coder-32b-instruct",
    messages=[{"role":"user","content":"hello"}],
)

# Try Qwen3-Embedding-0.6b — same client, same key
client.chat.completions.create(
    model="qwen/qwen3-embedding-0.6b",
    messages=[{"role":"user","content":"hello"}],
)
Get an AIgateway keyAdd a third model

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