Level

PwC

Lead AI Engineer

AI in this role

openailangchainlanggraphcrewaiautogensemantic-kernelmlflow
ragml-opsai-evaluationai-safety

Job Description & Summary

The opportunity


Provide hands-on engineering leadership for agentic AI products, define implementation patterns and ensure technical quality from prototype through production.


What you will be doing


·        Lead technical design and implementation of agents, RAG services, tool integrations and model orchestration.

·        Establish coding, testing, evaluation, review and documentation standards.

·        Decompose architecture into engineering work and guide estimation and sprint planning.

·        Coach engineers, review code and resolve complex technical problems.

·        Design evaluation suites for quality, safety, reliability, latency and cost.

·        Work with architects and MLOps to harden solutions for production.


What we need from you


·        6+ years in software, data or machine-learning engineering, including hands-on AI delivery.

·        Strong Python and API engineering capability and experience with modern agent or LLM frameworks.

·        Experience with retrieval, embeddings, vector stores, model evaluation and distributed systems.

·        Ability to lead agile engineering teams while remaining hands-on.


Relevant AI technologies and tooling

·        Strong hands-on expertise in Python and API engineering, with production experience using agent frameworks such as LangChain and LangGraph, Microsoft Agent Framework or Semantic Kernel, OpenAI Agents SDK, AutoGen, CrewAI, or equivalent.

·        Ability to implement graph-based and code-first orchestration patterns, including state, memory, checkpoints, tool calling, hand-offs, retries, idempotency, human approval and long-running workflows.

·        Advanced experience with RAG, structured outputs, prompt and context engineering, embeddings, vector or hybrid retrieval, reranking, knowledge graphs and retrieval evaluation.

·        Experience integrating agents with enterprise systems through REST or GraphQL APIs, events, queues, databases and MCP-compatible tools or servers.

·        Practical experience with automated evaluation and observability using technologies such as LangSmith, MLflow, Langfuse, OpenTelemetry, Azure AI evaluation capabilities or equivalent, covering quality, trajectory, latency, token use and cost.

·        Strong software-engineering discipline across pytest or equivalent testing, type checking, code review, dependency management, secure coding, CI/CD and containerized deployment.


Measures of success

·        Engineering throughput and predictability

·        Code quality and automated test coverage

·        Evaluation performance and production readiness

·        Reduction of defects and rework

·        Development of reusable components


Key interfaces

·        Other members of the AI Transformation & Agentic Systems Practice

·        PwC sector, functional, cloud, cyber, risk, Responsible AI and change specialists

·        Client business owners, product owners, technology teams and operational users

·        Technology alliance and implementation partners where relevant


Contribution to the practice

·        Support proposals, client workshops and market development appropriate to seniority.

·        Contribute reusable methods, patterns, code, assets and lessons learned.

·        Coach colleagues and participate in the capability’s continuous learning agenda.

·        Uphold PwC quality, independence, confidentiality and risk-management requirements.

#LI-BS1 #LI-Hybrid 

How we score this

Lead AI Engineer at PwC scores 97 out of 100 on AI centrality, which makes it AI Level 4 of 4 (Builds AI) on this board. The level measures how much of the work is AI, not seniority.

Classification

AI Level 4. Building AI systems is the job itself: without AI, the role would not exist.

  1. AI Level 480 to 100
  2. AI Level 360 to 79
  3. AI Level 240 to 59
  4. AI Level 10 to 39

Bands come from how often the tools, models and workflows of the role are named in the posting itself. Open the description and count.

Prepare for this job

A free preview built only from this posting: what it asks for, what you could be asked in an interview, and how to adjust your resume.

Skills and AI tools this role asks for

RagMl OpsAI EvaluationAI SafetyOpenAILangChainLangGraphCrewAI

Questions you could be asked

  1. How would you design a retrieval step so the model answers from real data instead of guessing?
  2. How do you monitor a model once it's live, and how do you know it needs retraining?
  3. How do you decide that one model's output is better than another's for a given task?
  4. How do you think about the risk of an AI system in this kind of role failing silently?
  5. Walk me through how you've used OpenAI in your day-to-day work.

Adapt your resume

  • List these exact terms on your resume: Rag, Ml Ops, AI Evaluation, AI Safety, and OpenAI. An applicant tracking system matches the wording, not the idea.
  • Attach one line of real, concrete experience to at least one of them — a tool named with nothing behind it rarely survives a human read.
  • Lead with what you built, trained or shipped — this role is judged on the AI system itself, not the tools around it.

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