MacPaw
AI Research Scientist
Remote role where the employee must remain based in a particular country.
Ukraine only
Employer listed it 3 months ago · Found 5h ago
Been open since 3 months ago. Long-running listings are sometimes left up after the role is filled.
Salary
Not stated
Location
Ukraine only
Timezone
Not stated
Contract
Full-time
Experience
Mid
Category
Software
This employer didn't state pay. Jobs like this usually pay around $140k–$245k a year, a typical range taken from 591 mid-level software roles on Nomaders that do state pay. It's a guide, not an offer.
Remote flexibility
Work from home
This is a remote role, but the employee must be based in Ukraine. It is work from home rather than work from anywhere.
What the employer says
- Source listing states candidate location: "Remote job, Kyiv, Ukraine, Remote"
What Nomaders makes of it
- Residency required in Ukraine
- Payroll and tax are likely handled in that country only
The quotes above are the employer's own words; the reading is ours. Always check the original listing and employment terms before working from another country.
About the role
Jira ticket
We’re looking for an AI Research Scientist to join our AI&Research Unit, a team dedicated to pushing the boundaries of fundamental artificial intelligence and bridging the gap between academic advancements and real-world technology.
Our fundamental research stream focuses on on-device LLM efficiency, deep architectural explorations, and localized machine learning solutions for the macOS ecosystem. It helps uncover high-level utility and solve complex technical challenges directly on user hardware, establishing our technology as a generalized leader in the global market.
As an AI Research Scientist , you will take deep ownership of our fundamental research initiatives. You’ll define, test, and coordinate advanced optimization workflows and structural model modifications while driving strategic collaborations with global scientific entities.
If you’re excited to lay the foundation for on-device AI efficiency to become a global industry standard, we’d love to hear from you!
In this role, you will:
Prepare fundamental research proposals within our specialized LLM efficiency and optimization streams.
Investigate new directions in LLM optimization by surveying relevant academic publications, formulating hypotheses, and running deep-dive experiments.
Collaborate closely with internal research scientists and external academic labs on joint research projects and scientific publications.
Work alongside the applied research stream to surface, validate, and transition relevant research prototypes into downstream production environments.
Contribute to a strong publication record at top-tier international AI conferences,
Take full ownership of your research niche, driving initiatives from ideation to implementation with a high degree of independence and autonomy.
Take part in internal knowledge-sharing sessions and weekly paper clubs to consistently improve domain expertise.
Skills you’ll need to bring:
Deep experience in Natural Language Processing (NLP) or a similar machine learning domain, gained through solid academic work, industry experience, or both.
Strong theoretical and practical understanding of recent LLM optimization techniques (ex. quantization, KV-cache compression, speculative decoding, and distillation).
Direct hands-on experience with parameter-efficient fine-tuning (including LoRA and other adapters) and mixture-of-experts (MoE) architectures.
Advanced prototyping skills and a proven ability to implement complex algorithms and architectures directly from academic papers.
Fluent programming capabilities in Python and modern frameworks such as PyTorch, JAX, or TensorFlow.
Robust fundamental knowledge of linear algebra, probability theory, and mathematical statistics.
Upper-intermediate level of English or higher for active scientific writing, international lab collaboration, and conference presentations.
As a plus:
A track record of publishing original research at international research conferences in AI/ML/SE/HCI domains.
Practical experience in performance engineering, including code profiling and low-level optimization (GPU, Metal, C++...).
Requirements
- ·Deep experience in Natural Language Processing (NLP) or a similar machine learning domain, gained through solid academic work, industry experience, or both.
- ·Strong theoretical and practical understanding of recent LLM optimization techniques (ex. quantization, KV-cache compression, speculative decoding, and distillation).
- ·Direct hands-on experience with parameter-efficient fine-tuning (including LoRA and other adapters) and mixture-of-experts (MoE) architectures.
- ·Advanced prototyping skills and a proven ability to implement complex algorithms and architectures directly from academic papers.
- ·Fluent programming capabilities in Python and modern frameworks such as PyTorch, JAX, or TensorFlow.
Benefits
No benefits package published with this listing. Ask about it at first interview.
How to apply
- 1Check the flexibility label above, work from home, matches where you plan to live and work.
- 2Tailor your CV to the role at MacPaw, mentioning your remote working experience.
- 3Apply directly on the employer's careers page using the button below. Nomaders never handles your application.
Found 6h ago. Last checked today. Always confirm the details on the original posting, salary and location can change after publication.
Listing sourced from Company boards.
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