FlexOlmo is a new kind of LM that unlocks a new paradigm of data collaboration. With FlexOlmo, data owners can contribute to the development of open language models without giving up control of their data. There is no need to share raw data directly, and data contributors can decide when their data is active in the model, deactivate it at any time, and receive attributions whenever it's used for inference.
Model Summary
FlexOlmo-7x7B-1T (without router training) is a Mixture-of-Experts with 33B total parameters, combining independently trained experts on public-mix, news, math, code, academic texts, creative writing, and Reddit data. The public-mix expert is trained on 1T tokens of public data while the other experts are branched from the public-mix expert and trained on 50B tokens of their respective data.
from transformers import Olmoe2ForCausalLM, AutoTokenizer
import torch
DEVICE = "cuda"if torch.cuda.is_available() else"cpu"
MODEL_NAME = "allenai/FlexOlmo-7x7B-1T"
model = Olmoe2ForCausalLM.from_pretrained(MODEL_NAME).to(DEVICE)
tokenizer = AutoTokenizer.from_pretrained(MODEL_NAME)
inputs = tokenizer("Bitcoin is", return_tensors="pt")
inputs = {k: v.to(DEVICE) for k, v in inputs.items()}
out = model.generate(**inputs, max_length=64)
print(tokenizer.decode(out[0]))
Evaluation Snapshot
Model
MC9
Gen5
MMLU
MMLU Pro
AGIEval
BBH
Math2
NewsG
PoemG
SciRIFF5
Code4
Avg.
Prev. Public model
68.7
58.8
55.9
26.2
39.9
35.7
8.2
76.0
47.8
48.1
1.1
42.4
Individual
Math
62.5
44.3
50.6
24.1
42.0
45.6
53.1
42.6
28.0
50.7
15.8
41.8
Code
40.5
39.4
29.5
14.5
27.4
38.1
6.0
45.1
28.2
48.0
21.0
30.7
News
46.5
48.6
36.4
15.2
25.7
30.9
2.5
77.7
26.9
47.0
0.0
32.5
Creative Writing
42.7
43.9
31.5
11.6
23.3
27.6
1.7
56.9
67.5
42.4
0.0
31.7
Academic
41.0
45.2
33.8
14.8
24.1
32.4
6.5
51.8
23.0
52.0
0.0
29.5
Reddit
64.7
36.5
56.1
25.5
35.5
19.7
2.5
54.1
8.6
32.7
1.7
30.7
Combined
BTM (top-2)
68.7
57.7
59.4
28.3
43.2
44.3
23.1
73.6
54.4
46.3
24.0
47.6
🔥
FlexOlmo-7x7B-1T
70.4
60.1
60.2
30.5
44.8
46.8
47.9
78.3
66.2
53.8
14.6
52.0
FlexOlmo-7x7B-1T-RT
70.3
60.0
60.2
30.3
45.2
47.2
47.7
77.2
67.6
53.9
13.3
52.2
The evaluation of the individual model refers to the dense model, not the 2x7B MoE model.
Citation
@misc{flexolmo,
title={FlexOlmo: Open Language Models for Flexible Data Use},
author={Weijia Shi and Akshita Bhagia and Kevin Farhat and Niklas Muennighoff and Pete Walsh and Jacob Morrison and Dustin Schwenk and Shayne Longpre and Jake Poznanski and Allyson Ettinger and Daogao Liu and Margaret Li and Mike Lewis and Wen-tau Yih and Dirk Groeneveld and Luca Soldaini and Kyle Lo and Noah A. Smith and Luke Zettlemoyer and Pang Wei Koh and Hannaneh Hajishirzi and Ali Farhadi and Sewon Min},
year={2025},
eprint={2507.00000},
archivePrefix={arXiv},
primaryClass={cs.CL},
url={https://allenai.org/papers/FlexOlmo},
}
Runs of allenai FlexOlmo-7x7B-1T on huggingface.co
7.3K
Total runs
0
24-hour runs
-260
3-day runs
-375
7-day runs
-1.8K
30-day runs
More Information About FlexOlmo-7x7B-1T huggingface.co Model
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