Machine Learning Expert - Fully Remote
Remote / Online - Candidates ideally in
Ontario, San Bernardino County, California, 91758, USA
Listed on 2026-09-12
Ontario, San Bernardino County, California, 91758, USA
Listing for:
Obsidian
Part Time, Remote/Work from Home
position Listed on 2026-09-12
Job specializations:
-
Software Development
Machine Learning/ ML Engineer, AI Engineer (Applied/Software)
Job Description & How to Apply Below
Overview
We are hiring experienced machine learning engineers and researchers to serve as human base liners for evaluations of open-ended machine learning research tasks. These evaluations measure how well AI agents perform on realistic AI R&D problems. To interpret agent performance, we also need strong human reference points: skilled practitioners attempting the same tasks under the same time and compute constraints. As a baseliner, you will complete self-contained ML research tasks in a sandboxed environment, working independently with your preferred tools and workflow.
Your performance will be used as a benchmark against which frontier-model agents are evaluated.
- Attempt open-ended machine learning research tasks under a fixed time and compute budget (work trial)
- Work independently in a sandboxed Linux environment with internet access
- Use your preferred tooling, including IDEs and AI coding assistants such as Cursor, Claude Code, and ChatGPT
- Record your full working session via screen recording
- Complete a short pre-task and post-task questionnaire
- Submit your final work product, screen recording, and completed questionnaires
Post this you will be hired for a longer commitment.
Commitment- Minimum 20 hours per week if selected
- More availability is strongly preferred
- 3+ years of machine learning experience (time spent in a PhD program counts toward this requirement; undergraduate and master’s experience does not count)
- Attended a top‑100 university or worked at FAANG or a comparable company
- Experience with at least one major ML framework such as Py Torch ,
JAX
, or Tensor Flow - Deep, hands‑on expertise in at least one of the following focus areas:
- Pretraining under tight data and compute budgets
- PPO, reward shaping, custom gym / gymnasium environments, and throughput tuning
- Full fine‑tuning, LoRA, QLoRA, DPO, RLHF, RLAIF, and distillation
- Large‑scale corpus filtering, deduplication, subsampling, and benchmark contamination avoidance
- Architecture design under strict parameter‑count or size constraints
- Modifying pretrained architectures, including attention patterns, pooling heads, or training objectives
- Contrastive training for embedding or retrieval models
- Generative vision or video modeling
- Multilingual or low‑resource language experience
- Image or video data pipelines at scale
- Experience balancing competing model objectives such as safety and capability
- Prior work as an ML evaluator, red‑teamer, or baseliner
- Pretraining: training transformer language models from scratch
- Reinforcement learning: training agents in custom or existing environments
- Post‑training: fine‑tuning and aligning LLMs
- Dataset curation: building and cleaning large text corpora for LLM training
- Model architecture: designing and modifying neural network architectures
- One baseline attempt per contractor per task
- Each task may only be attempted once by a given contractor
- All work is confidential and covered by NDA
- Compute and environment are provided; no personal GPU is required
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