Lead Software Engineer
Envestnet
- Location
- ALL USA
- Workplace
- Remote
- Employment
- Full Time
- Salary
- USD 149,000–186,000/yr
Posted 2mo ago
The employer’s full description could not be read from their board. This is a summary of the posting — follow the apply link for the original.
Responsibilities
- Lead, design, build, and evolve Envestnet’s premier wealth management fintech product platform
- Introduce AI Agent–driven capabilities in a secure, compliant, and production‑ready manner
- Lead a cross-functional Scrum team, assist in Sprint planning, effort estimates, and scheduling
- Own technical design, delivery and architecture for mission-critical fintech services
- Lead design and implementation of Java / Spring Boot microservices
- Establish engineering standards for performance, observability, reliability, and maintainability
- Drive the safe, compliant adoption of agentic AI/LLM capabilities
- Partner cross-functionally with product, platform, and risk/compliance stakeholders
- Provide hands-on leadership across the SDLC
- Mentor and develop engineers
- Lead releases and production support, including incident response and operational readiness
Requirements
- Bachelor’s degree in Computer Science or related field required
- 8+ years of backend engineering experience using Java and/or Python
- Strong experience with Spring, SQL/NoSQL, and modern distributed systems
- 2+ years designing and delivering production-grade AI/ML systems
- Experience with LLM-based applications and agentic workflows
- Strong background in building distributed, transactional systems in fintech or other regulated domains
- Deep understanding of data consistency, idempotency, fault tolerance, and scalability
- Solid understanding of security, observability, and production incident handling
- Demonstrated ability to lead architectural decisions
- Define technical standards
- Communicate trade-offs to both technical and non-technical stakeholders
- Experience with event driven architectures (Kafka, async messaging)
- Experience with Cloud infrastructures (AWS, GCP, Azure)
- Familiarity with AI cost control, evaluation, and governance practices
- Prior experience in trading systems, real‑time financial platforms, or regulated production environments
Preferred
- Master’s preferred
- Agentic AI (LangGraph)
- RAG
- Vector Stores
- Kubernetes
- Docker
- Security Tooling
- Observability & Monitoring Platforms
Skills
- Java
- Python
- Spring
- Spring Boot
- SQL
- NoSQL
- Kafka
- AWS
- GCP
- Azure
- LangGraph
- RAG
- Vector Stores
- Kubernetes
- Docker
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