Principal AI Transformation Engineer

DiDi Labs

$255K — $351K *
Enterprise Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • Proven technical leader with experience in system-level architectures and core coding.
  • Demonstrated ability to influence and drive diverse engineering teams towards AI-first engineering.
  • Experience leading large-scale AI-native transformations or building enterprise-grade AI/ML platforms.
  • Hands-on experience with AI infrastructure tools like PyTorch, Kubernetes, and Triton Inference Server.
  • Deep experience in distributed LLM training and large-scale compute cluster operations.

Responsibilities

  • Spearhead integration of advanced LLM ecosystems into the AI platform architecture.
  • Collaborate with engineering teams to eliminate technical bottlenecks and enhance internal systems.
  • Design and implement scalable automation pipelines for LLM deployment and monitoring.
  • Monitor AI trends to ensure the competitiveness of the AI infrastructure.
  • Act as a connector between emerging technologies and internal systems.

Benefits

  • Comprehensive health insurance options.
  • Generous paid time off policies.
  • Retirement plan contributions.
  • Employee development programs and continuous learning opportunities.
Full Job Description
About The Role
At DiDi Autonomous Driving, we firmly believe that the future of mobility goes beyond simply "utilizing AI"-it will be fundamentally reimagined and entirely driven by an AI-Native architecture.

We are seeking a visionary, highly technical, and mission-driven Principal AI Transformation Engineer to act as the ultimate catalyst for our company-wide AI transformation. In this strategic, high-impact leadership role, you will combine cutting-edge Large Language Model (LLM) expertise, robust systems architecture design, and a proven track record of enterprise-level AI scaling. You will embed deeply with our core engineering teams to evolve our traditional R&D organization into a truly AI-Native powerhouse.

Key Responsibilities

  • AI Infrastructure & Platform Architecture: Spearhead the evaluation, selection, and deep integration of frontier LLM ecosystems (e.g., Llama, Hugging Face) and commercial AI platforms. Own the architectural design of our unified, distributed AI platform spanning complex data processing, model training, inference pipelines, and evaluation frameworks.
  • Forward Deployed Execution: Embed directly with core autonomous driving teams (Perception, Prediction, Planning & Control, and Simulation) via the FDE model. Pinpoint engineering bottlenecks, eliminate friction, and translate complex AI capabilities into production-ready internal ecosystems (e.g., AI DevOps, AI Copilots).
  • LLMOps / MLOps Orchestration & Optimization: Design and implement highly resilient, scalable automation pipelines for LLM deployment, monitoring, and continuous feedback loops. Optimize GPU cluster utilization, minimize inference latency, and maximize throughput across large-scale production environments.
  • Technical Roadmap & Vision: Keep a strong pulse on breakthrough trends in AGI and systems engineering. Act as a "super-connector" between external technological innovations and internal systems, ensuring our AI infrastructure maintains a 1-3 year competitive edge.


Qualifications & Experience

  • Architectural Vision + Hands-on Execution: A proven technical leader who can design complex, system-level architectures while maintaining a fierce passion for writing core code, debugging deep system issues, and optimizing low-level execution paths. Proficiency in core languages such as C++, Python, Java, JavaScript, etc.
  • Cross-Functional Influence: Demonstrated ability to build technical authority, align priorities, and drive diverse engineering teams (Algorithms, Infrastructure, Hardware) toward adopting an AI-first engineering paradigm without relying on formal administrative authority.
  • Enterprise AI Transformation: Proven experience leading or heavily contributing to a large-scale corporate "AI-native transformation," or a track record of building enterprise-grade AI/ML platforms from 0 to 1.
  • Deep AI Tech Stack Expertise: Thorough hands-on deployment, tuning, and optimization experience with mainstream AI infrastructure tools and frameworks, including but not limited to PyTorch, Ray, vLLM, Triton Inference Server, Kubernetes, DeepSpeed, and Megatron-LM.
  • Hardcore AI Infra Experience: Years of deep, practical experience in distributed LLM training/inference optimization and large-scale compute cluster infrastructure & operations (I&O).


Preferred Qualifications
  • Domain Expertise: Familiarity with autonomous driving algorithms (Perception, Planning, Control, Simulation), robotics, physics-based simulation engines, or ultra-large-scale ML training/serving clusters is highly preferred.
  • Senior Industry Track Record: 8-10+ years of professional engineering depth in systems software, core cloud infrastructure, or production-grade machine learning platforms.
  • Agentic Frameworks & Developer Productivity: Hands-on experience building custom AI Copilot applications, autonomous Multi-Agent Frameworks, or high-tier developer productivity platforms.
  • Thriving in Complexity: Proven success steering core project delivery amidst complex business logic, fast-paced/high-pressure environments, or mission-critical systems.
  • Technical Influence: An active contributor to the broader tech community (e.g., open-source maintainer/owner, author of high-quality technical blogs/papers, or speaker at premier industry AI/ML conferences).


The base salary range for this full-time position is $255,000 -$351,000 annually in addition to bonus, equity and benefits. Our salary ranges are determined by role, level, and location. Within the range, individual pay is determined by work location and additional factors, including job-related skills, experience, and relevant education or training.

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