Jobs Companies LPL Financial AVP, Principal AI Engineer

Über diese AVP, Principal AI Engineer Stelle bei LPL Financial

LPL Financial · Vor Ort · Fort Mill/Charlotte

Where Ambition Meets Innovation

Build a career that matches all your initiative with an impressive dose of innovation. From cutting-edge resources and a collaborative environment to the freedom to make an impact and more, you’ll find the ingredients you need at LPL Financial to shape your success while helping clients pursue their financial goals.

Job Summary

LPL Financial is seeking a highly technical and hands-on AI engineering leader to help design, build, and deploy next-generation AI solutions for our advisors and business partners.

This role is primarily an individual contributor position responsible for developing production-grade AI and machine learning capabilities while partnering closely with product, engineering, data, and business teams. The ideal candidate combines deep technical expertise in AI/ML and Generative AI with the ability to influence architecture, mentor engineers, and drive adoption of AI solutions across the enterprise.

This position offers the opportunity to shape LPL's AI platform strategy, build advisor-facing AI capabilities, and help establish engineering best practices for scalable, secure, and responsible AI. Over time, this role may provide leadership opportunities for a small team of AI engineers.

Responsibilities:

  • Design, develop, and deploy production-grade AI/ML solutions that support LPL Financial's business objectives and advisor experience.

  • Architect and build AI-powered applications using modern technologies such as LLMs, generative AI, agentic workflows, RAG architectures, and machine learning models.

  • Lead the end-to-end software engineering lifecycle for AI solutions, including design, development, testing, deployment, monitoring, and optimization.

  • Partner with Wealth Management, Operations, Risk, Marketing, Product, and Engineering teams to identify high-value AI use cases and translate business requirements into scalable technical solutions.

  • Develop and deliver AI-enabled products, platforms, and tools that improve advisor productivity, operational efficiency, and client experience.

  • Build and maintain cloud-native AI solutions utilizing AWS services, including Bedrock and related AI/ML technologies.

  • Design and implement APIs, microservices, and platform services that enable reusable and scalable AI capabilities across the enterprise.

  • Establish engineering best practices for AI development, model evaluation, deployment, observability, security, and responsible AI.

  • Collaborate with data, engineering, and architecture teams to ensure AI solutions are secure, compliant, performant, and aligned with enterprise standards.

  • Evaluate emerging AI technologies, frameworks, and tooling and recommend opportunities for adoption within LPL.

  • Provide technical leadership, mentoring, and architectural guidance to engineers and contribute to the growth of a future AI engineering team.

  • Present technical solutions, architecture decisions, and AI innovation opportunities to business and technology stakeholders.

What are we looking for?

We’re looking for strong collaborators who deliver exceptional client experiences and thrive in fast-paced, team-oriented environments. Our ideal candidates pursue greatness, act with integrity, and are driven to help our clients succeed. We value those who embrace creativity, continuous improvement, and contribute to a culture where we win together and create and share joy in our work.

Requirements:

  • Minimum of 8 years of software engineering, AI/ML engineering, or machine learning development experience, with a proven track record of building and deploying production AI solutions in complex enterprise environments.

  • Strong hands-on programming expertise in Python and experience with modern AI/ML frameworks such as TensorFlow, PyTorch, scikit-learn, LangChain, or similar technologies.

  • Experience designing, developing, and deploying Generative AI and machine learning solutions, including LLM-based applications, NLP, RAG architectures, AI agents, model serving, or related AI technologies.

  • Strong cloud engineering experience with AWS, Azure, or GCP, including experience deploying scalable AI/ML workloads and cloud-native applications.

  • Experience working in highly regulated industries such as Wealth Management, Financial Services, Banking, FinTech, Insurance, Healthcare, or similar environments with strong governance, security, risk, and compliance requirements.

Core Competencies:

  • Deep understanding of machine learning concepts including supervised learning, unsupervised learning, deep learning, NLP, recommendation systems, and predictive analytics.

  • Experience delivering AI solutions from concept through production deployment, monitoring, and optimization.

  • Strong software engineering fundamentals, including APIs, microservices, scalable architectures, testing, and CI/CD practices.

  • Experience partnering with product, engineering, and business stakeholders to translate business requirements into technical solutions.

  • Knowledge of responsible AI principles, model governance, security, privacy, and risk management.

  • Strong communication skills with the ability to explain technical concepts to both technical and non-technical audiences.

  • Demonstrated technical leadership, mentoring, and influence across cross-functional teams.

  • Strong problem-solving, architectural design, and decision-making skills.

Preferences:

  • Experience building advisor-facing, customer-facing, or employee-facing AI products.

  • Financial Services, Wealth Management, Brokerage, Asset Management, or FinTech experience.

  • Experience with AWS AI services such as Bedrock, SageMaker, Textract, Comprehend, or related AI platforms.

  • Experience with vector databases, embeddings, RAG, knowledge graphs, agentic AI, and LLM orchestration frameworks.

  • Experience with MLOps, model lifecycle management, observability, and monitoring.

  • Experience with big data technologies such as Spark, Hadoop, Databricks, or large-scale data platforms.

  • Experience with AI governance, model validation, and regulatory compliance programs.

  • Master's degree in Computer Science, Engineering, Data Science, Statistics, or a related quantitative field.

  • Bachelor's or Master's degree in Computer Science, Engineering, Data Science, Statistics, or a related quantitative field. Ph.D. preferred.


 

Pay Range:

$133,600.00 - $222,600.00


 

Actual base salary varies based on factors, including but not limited to, relevant skill, prior experience, education, base salary of internal peers, demonstrated performance, and geographic location. Additionally, LPL Total Rewards package is highly competitive, designed to support your success at work, at home, and at play – such as 401K matching, health benefits, employee stock options, paid time off, volunteer time off, and more. Your recruiter will be happy to discuss all that LPL has to offer!


 

Company Overview:

LPL Financial Holdings Inc. (Nasdaq: LPLA) is among the fastest growing wealth management firms in the U.S. As a leader in the financial advisor-mediated marketplace(6) , LPL supports over 32,000 financial advisors and the wealth management practices of approximately 1,100 financial institutions, servicing and custodying approximately $2.3 trillion in brokerage and advisory assets on behalf of approximately 8 million Americans. The firm provides a wide range of advisor affiliation models, investment solutions, fintech tools and practice management services, ensuring that advisors and institutions have the flexibility to choose the business model, services, and technology resources they need to run thriving businesses. For further information about LPL, please visit www.lpl.com.


At LPL, independence means that advisors and institution leaders have the freedom they deserve to choose the business model, services, and technology resources that allow them to run a thriving business. They have the flexibility to do business their way. And they have the freedom to manage their client relationships, because they know their clients best. Simply put, we take care of our advisors and institutions, so they can take care of their clients.


For further information about LPL, please visit www.lpl.com.


Join the LPL team and help us make a difference by turning life’s aspirations into financial realities. Please log in or create an account to apply to this position. Principals only. EOE.


Information on Interviews:

LPL will only communicate with a job applicant directly from an @lplfinancial.com email address and will never conduct an interview online or in a chatroom forum.  During an interview, LPL will not request any form of payment from the applicant, or information regarding an applicant’s bank or credit card.  Should you have any questions regarding the application process, please contact LPL’s Human Resources Solutions Center at (855) 575-6947.


EAC 5.19.26

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Wie sich dieses Gehalt für AI Engineer vergleicht

Diese Stelle zahlt $178,100/yrim Einklang mit der üblichen Spanne für AI Engineer Stellen.

$114,517 dem Median $189,475 $277,095

Übliche Spanne $150,000–$234,000/yr, aus 3,018 vergleichbaren AI Engineer Anzeigen auf JobsRadar (Vergütung auf USD hochgerechnet). Gehaltseinblicke für AI Engineer ansehen →

Über LPL Financial

LPL Financial is the nation’s largest independent broker-dealer.* Our company is widely known for its financial strength, exceptional service, and favorable industry reputation among financial professionals. To understand who we are, it’s important to know our core belief: financial guidance is a fundamental need for everyone. LPL Financial creates the space to let you do what you do best – create personal, long-term client relationships that turn financial aspirations into realities. Each year, thousands of financial professionals successfully manage billions of dollars in assets. Because our company is not too big and not too small, you can seize the opportunity to make a real impact. To l

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