Model page

allenai/OLMo-2-1124-7B-DPO warn

Weights only ship in a format that can run code when loaded; glitch tokens that can silently corrupt ordinary input.

Could not load this model from the Hugging Face API (private, gated, or nonexistent). Findings below are from our archive.

Scan coverageStatic battery2026-08-25Weights battery2026-08-25Behavioral batterynot rundetails
BatteryLooks atStatus
Static batteryMetadata & packagingcomplete 2026-08-25
Weights batteryWeights forensics — no GPU, no downloadcomplete 2026-08-25100,352-token embedding scanned · 520 undertrained · lineage consistent · pickle audit clean
Behavioral batteryLive-inference differentialsnot run

Ingot runs three batteries against a model. What each one checks →

Findings

Scanned 2026-08-25 · published from a community scan.

medium Pickle-serialized weights, no safetensors

Weights ship only as pickle-based files (pytorch_model-00001-of-00003.bin, pytorch_model-00002-of-00003.bin, pytorch_model-00003-of-00003.bin). Loading pickle executes arbitrary code from the file — prefer a safetensors release or load in a sandbox.

How to fix

Convert the weights to safetensors before loading them anywhere that matters.

  1. Do not load the pickle files in-process — pickle deserialization executes arbitrary code from the file.
  2. Convert locally in a sandbox: `pip install safetensors` and use `safetensors.torch.save_file` on a state dict loaded with `torch.load(..., weights_only=True)` (refuses most code-execution payloads), or use Hugging Face's `convert.py` space/script.
  3. Pin the exact revision hash you converted from, and load only your converted safetensors artifact from then on.

medium Undertrained (glitch) token surface in vocabulary

Embedding-norm scan flagged 520 undertrained tokens (norm < 0.3× the vocabulary median of 7.606), including 270 plain-ASCII strings that can appear in ordinary input as identifiers — e.g. "adaptiveStyles", "-vesm", "RTCK", "useRalativeImagePath", "RTHOOK", "useRal", "ForCanBeConverted", "webElementProperties". In models where this class was tested behaviorally, such tokens silently rewrote user input into confident, schema-valid, wrong output. These are candidates from the weights alone; behavioral confirmation requires the behavioral battery.

How to fixruntime guardweight-level

Keep the affected token strings out of the model's input — the scan-derived runtime guard carries this model's exact blocklist.

  1. Fetch this model's guard artifact (`/api/v1/guard/<owner>/<model>`): the confirmed corrupting tokens and the low-norm candidate list, derived from the published scan.
  2. Screen inbound text with it (the `@ingotai/guard` package is a reference implementation) and route flagged records to a different model or human review — verbatim-copy tasks on flagged strings are the failure mode.
  3. The underlying cause is undertrained embeddings in the weights; a true fix is weight-level (continued pretraining on the affected tokens) — that is not a patch, it's a training job.

info Pickle static analysis clean

Opcode-level parse of pytorch_model-00001-of-00003.bin, pytorch_model-00002-of-00003.bin, pytorch_model-00003-of-00003.bin (no code executed) found only standard serialization globals (3 distinct, all torch/collections/numpy). Pickle remains an executable format — this verifies the current bytes, not future uploads; prefer a safetensors release.

info Weights consistent with claimed parent allenai/OLMo-2-1124-7B-SFT

Mean cosine similarity of 64 sampled token-embedding rows against allenai/OLMo-2-1124-7B-SFT is 1.000 — the weights plausibly descend from the declared base (relation: unspecified).

How to fix

Fix or verify the `base_model` declaration so lineage checks can run.

  1. If you own the repo: correct the `base_model` field in the model card metadata to the real, public parent.
  2. If you don't: identify the true parent (config architecture + weight shapes narrow it fast) and re-scan with that lineage in mind.

Remediation guidance addresses the documented findings only. It is evidence-driven repair, not a safety certification of the model.

Fingerprint

The durable profile of this model: measured weights-and-metadata facts, rebuilt on every scan and battery run. Updated 2026-08-25.

architectureolmo2 · 32 layers · 4096-dim
vocabulary100,352 tokens
licenseapache-2.0
serializationno safetensors pickle
chat templatepresent · sha256:fe689ffbd6a4e2d0
claimed lineageallenai/OLMo-2-1124-7B-SFT
lineage verifiedconsistent vs allenai/OLMo-2-1124-7B-SFT — embedding-row cosine 1.000
glitch-token surface520 undertrained candidates, 270 plain-ASCII
Full measured fingerprint
architecturesOlmo2ForCausalLM
librarytransformers
pipelinetext-generation
repo files14 — pickle: pytorch_model-00001-of-00003.bin, pytorch_model-00002-of-00003.bin, pytorch_model-00003-of-00003.bin
revisione34ea60adff2
HF snapshot3.1k downloads · 1 likes · updated 2025-01-06 · captured 2026-08-25
pickle auditpytorch_model-00001-of-00003.bin, pytorch_model-00002-of-00003.bin, pytorch_model-00003-of-00003.bin3 standard global(s)
embedding tensormodel.embed_tokens.weight · BF16 · 100,352×4096
embedding normsmedian 7.606 · mean 7.4234
lineage checkconsistent — cosine 1 over 64 sampled rows vs allenai/OLMo-2-1124-7B-SFT
glitch-token samples"adaptiveStyles", "-vesm", "RTCK", "useRalativeImagePath", "RTHOOK", "useRal", "ForCanBeConverted", "webElementProperties", "TokenNameIdentifier", "AppMethodBeat", "typingsJapgolly", "_ComCallableWrapper"
Battery runs (1)the run trace behind the findings — what each job measured
batterystatusqueueddurationattempts
weightscomplete2026-08-25 21:462m1
weights run 2026-08-25 measurements
probes runglitch-norm-scan, zero-template-token-scan, pickle-static-analysis, lineage-norm-correlation
embedding tensormodel.embed_tokens.weight · BF16 · 100,352×4096
glitch surface520 undertrained, 270 plain-ASCII
lineage checkconsistent — cosine 1 over 64 rows vs allenai/OLMo-2-1124-7B-SFT

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Ingot verdict: warn

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