ChainOpera AI is hiring a Web3 AI Research Scientist in LLM-based Agent
Compensation: $105k - $120k estimated
Location: United States
ChainOpera AI is the world’s first truly decentralized and open AI platform for simple, scalable, and trustworthy collaborative AI economy, and the AI app ecosystem for accessible and democratized AI - our GPUs, our model, our personal AI.
ChainOpera AI is supported by
Enterprise-level generative AI platform for system scalability, model performance, and security/privacy (ChainOpera AI Platform)
Leading open source library in large-scale distributed training, model serving, and federated learning (FedML)
Innovative and unique edge-cloud collaborative AI models and systems towards on-device personal AI (Fox LLM)
Internet veterans for serving billion-level end users based on cloud computing and mobile internet
Established researchers in blockchain, machine learning, and large-scale distributed systems (80000+ citations)
Ecosystem partnership with GPU providers, model developers, AI platforms, and AI applications
Top-tier investors, angels, and advisors
Responsibilities:
Design and develop novel architectures for LLM-based agents that can reason, plan, and execute tasks autonomously
Research and implement advanced techniques for improving agent capabilities, including multi-task learning, few-shot learning, and continual learning
Investigate methods for enhancing the reliability, safety, and ethical behavior of LLM-based agents
Develop strategies for efficient integration of external knowledge and tools with LLM agents
Collaborate with blockchain and distributed systems experts to explore decentralized agent architectures
Publish research findings in top-tier AI conferences and journals
Work closely with engineering teams to prototype and deploy research outcomes
Requirements:
Ph.D. in Computer Science, Artificial Intelligence, or a related field
Strong background in natural language processing, deep learning, and reinforcement learning
Experience with large language models and their applications
Proficiency in Python and deep learning frameworks (e.g., PyTorch, TensorFlow)
Excellent problem-solving skills and ability to think creatively about AI agent architectures
Strong publication record in top-tier AI conferences or journals
Preferred Qualifications:
Experience with multi-agent systems and collaborative AI
Knowledge of cognitive architectures and symbolic AI approaches
Familiarity with blockchain technologies and decentralized systems
Track record of open-source contributions to AI projects, particularly in the field of language models or AI agents
Experience mentoring junior researchers or leading research projects in AI
Apply Now:
Compensation: $105k - $120k estimated
Location: United States
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