AI大模型算法专家LLM Algorithm Expert
岗位信息
| 招聘单位 | 携程集团 |
|---|---|
| 部门/事业群 | Vacations |
| 工作地点 | 上海 |
| 官方更新时间 | 2026-06-04 |
任职要求
<p>职位描述</p><p>.主导大模型的算法研究、训练调优及工程化落地,提升模型性能和效率;</p><p>.主导大模型压缩、分布式训练、推理加速等技术落地(如量化、MoE、FlashAttention等);</p><p>.结合业务场景(如对话系统、内容生成、知识推理)设计模型优化方案,解决数据稀疏性、幻觉抑制等挑战;</p><p>.跟踪学术界与工业界最新进展,推动技术成果转化;</p><p>.主导技术方案输出,协同工程团队实现高性能服务部署;</p><p>.参与Agent架构设计,完成整体Agent项目落地。</p><p><br></p><p>任职资格</p><p>.硕士及以上学历,2年以上大模型研发经验,5年以上算法研发经验;</p><p>.精通PyTorch/TensorFlow框架,熟悉分布式训练工具;</p><p>.深入掌握Transformer架构及衍生技术,有丰富的大模型调优经验;</p><p>.熟练掌握大模型微调、蒸馏、强化学习等训练技术;</p><p>.具备完整的大模型训练-部署全链路经验;</p><p>.熟练掌握Agent架构;</p><p>.有顶会论文发表者优先。</p><p><br></p><p><strong>Job Description</strong></p><ul><li><strong>LLM R&D & Deployment:</strong> Lead algorithm research, training, fine-tuning, and engineering implementation of Large Language Models (LLMs) to enhance model performance and efficiency.</li><li><strong>Optimization & Acceleration:</strong> Drive the implementation of LLM compression, distributed training, and inference acceleration techniques (e.g., quantization, MoE, FlashAttention).</li><li><strong>Domain Adaptation & Challenge Mitigation:</strong> Design model optimization strategies tailored to business scenarios (e.g., conversational AI, content generation, knowledge reasoning) to address challenges like data sparsity and hallucination mitigation.</li><li><strong>Tech Transfer:</strong> Track frontier developments across academia and industry to drive the commercialization of technical achievements.</li><li><strong>Architecture & High-Performance Deployment:</strong> Lead the output of technical architecture solutions, collaborating with engineering teams to deploy high-performance model services.</li><li><strong>Agent Architecture:</strong> Participate in Agent system architecture design and drive end-to-end Agent project execution.</li></ul><p><strong>Qualifications</strong></p><ul><li><strong>Education & Experience:</strong> Master's degree or above; 2+ years of LLM R&D experience, with 5+ years of overall algorithm research and development experience.</li><li><strong>Frameworks & Infrastructure:</strong> Proficient in PyTorch/TensorFlow frameworks and experienced with distributed training tools.</li><li><strong>Core Architecture & Fine-Tuning:</strong> Deep mastery of Transformer architecture and related variant technologies, backed by extensive experience in LLM tuning.</li><li><strong>Training Techniques:</strong> Proficient in LLM fine-tuning, knowledge distillation, and reinforcement learning techniques.</li><li><strong>Full-Lifecycle Experience:</strong> Proven track record spanning the entire end-to-end pipeline from LLM training to deployment.</li><li><strong>Agent Expertise:</strong> Fluent in AI Agent architecture principles and design.</li><li><strong>Publications (Preferred):</strong> First-author or major publications in top-tier conferences are preferred.</li></ul>
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