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Agent Application Algorithm Engineer

Fresher
  • Posted 14 hours ago
  • Be among the first 10 applicants

Job Description

Job Description:

  • Build core Agent logic, including but not limited to task planning and orchestration, tool calling, multi-turn dialogue management, memory, RAG, context engineering, and multi-agent collaboration.
  • Lead Continuous Pre-training and Post-training for vertical domains and business scenarios, including building high-quality datasets and data pipelines, designing RL reward models, improving instruction following and reasoning capabilities, task completion, role-playing, anthropomorphic and personalized dialogue, proactive/reactive immersive multimodal conversation experiences, and enhancing the model's IQ and EQ.
  • Build long-term and short-term memory architectures, addressing issues such as forgetting and attention dispersion in long contexts, and improving immersion and consistency in long-term user interactions.
  • Build multimodal RAG systems, including development and optimization of key modules such as recall, ranking, long-text processing, and multi-document synthesis.
  • Develop the Agent's tool layer, integrating external APIs and MCP such as search, code interpreters, browsers, sandboxes, and third-party services.
  • Design and tune prompts and context management, with tailored optimization for different product requirements.
  • Design scientifically rigorous quantitative evaluation systems and plans aligned with product requirements continuously monitor product metrics and provide guidance for Agent and model optimization.
  • Explore innovative AI applications.

Requirements:

  • Master's degree or above in Artificial Intelligence, Computer Science, Mathematics, or a related field.
  • Strong programming skills proficient in PyTorch familiar with distributed training frameworks such as DeepSpeed and Megatron.
  • Strong experience with techniques and principles of LLM training/inference, including but not limited to data synthesis and filtering, model training optimization, prompt engineering, evaluation, deployment, and prototype development.
  • Strong problem analysis and resolution skills sustained interest and curiosity in frontier AI technologies and applications strong self-drive able to collaborate closely with teams to drive a full closed loop from research to deployment.
  • Good development experience with Agent frameworks such as LangGraph, Google Agent Development Kit, or OWL.
  • Strong engineering capabilities familiar with AI development tools such as Cursor and Claude Code proactive mindset for improving efficiency.
  • Prior project experience in areas such as Agentic reinforcement learning, virtual character generation, multimodal interaction, personality modeling, or memory will be a strong plus

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Job ID: 153670041

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