Volarisgroup
AI-Directed Software Engineer
United States - Georgia · Canada - Remote · United States - Remote
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hirly's read of this role
- Role family
- Engineering
- Seniority
- Mid level
- Countries
- US, CA
- Work mode
- On-site / unstated
- First seen by hirly
- 9 Oct 2026
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the posting
Job Summary:
Job Summary:
The AI-Directed Software Engineer designs and delivers software across the full Envisionware stack (backend, frontend, native clients, and the AWS infrastructure that runs them) by directing AI systems to do the bulk of the implementation work. You'll move ideas from concept to demo to production at high speed, decomposing problems into spec-driven AI-executable tasks, steering and refining AI output, and owning the quality, performance, and customer impact of the result.
This is a full-stack role with a DevOps component, built on AWS. You won't be specializing in one layer. You'll own features end-to-end: from the database schema, through the Java services, through the Angular or React UI, and out through the Kubernetes deployment on AWS that ships them.
You'll also build AI capabilities into the platform itself, using Amazon Bedrock to deliver agent-driven workflows on AWS.
Operating in an AI-first environment, you'll push the organization from AI-assisted toward AI-delegated software delivery.
Job Description:
Job Description:
Our Stack
AWS experience is required. The rest you can ramp on, but you'll work across all of it:
Backend: Java, Maven, Jersey (JAX-RS), Jackson, Log4j, Tomcat
Frontend (Angular): Angular + TypeScript, PrimeNG, PrimeFlex, Transloco, DayPilot
Frontend (React): React, Vite, TypeScript, TailwindCSS
Data: PostgreSQL (runtime + analytics instances), direct SQL
Messaging: Apache ActiveMQ
Native client: C# / .NET Framework (Windows ZeroClient), WiX / MSI installers, Android/iOS
Cloud (AWS, required): CloudFormation, IAM, VPC networking, S3, EFS, CloudWatch, multi-tenant cloud architecture
Containers & DevOps: Docker, Kubernetes, Helm/Kustomize
AI Platform: Amazon Bedrock (foundation models, Agents / AgentCore, Knowledge Bases, Guardrails), AWS Lambda for agent tools and action groups, Claude Code
Analytics & tooling: Python ETL pipelines, Swagger / OpenAPI
Multi-module monorepo: WebServices (backend) · WebApps (Angular) · ReactWebApps (Vite/React) · NativeClients (C#) · Packages (Docker/K8s).
What You'll Own
End-to-end delivery of features from concept → demo → production, across backend, frontend, and deployment
Directing AI tools to generate code for spec-driven SDLC, APIs, UI, SQL, infra config, and workflows
Decomposing product requirements into AI-executable tasks
Validation, testing, and hardening of AI-generated output
Kubernetes/Docker configuration and deployment on AWS of the services you build
Designing and shipping Amazon Bedrock-based AI agents : action groups and tool integrations, Knowledge Base (RAG) retrieval, and Guardrails
Operating what you build on AWS, including IAM least privilege, cost awareness (token and compute spend), and CloudWatch observability
Throughput and cycle time across your assigned workstreams
Continuous improvement of AI-driven development patterns, prompts, and tooling
How AI Changes This Role
AI is your primary implementation engine. You're not expected to hand-write every line of code across every layer of this stack; you're expected to direct AI to produce it. You'll use AI to generate Java services, Spring Boot, Angular components, React UIs, SQL, Dockerfiles, K8s manifests, and CloudFormation templates alike.
AI is also part of what you'll ship. Bedrock-based agents will put AI to work inside our products, which raises the bar: agents need guardrails, evaluation, human-in-the-loop checkpoints where decisions matter, and predictable cost.
Every AI-generated output is a starting point, not a finished product. You own correctness, edge cases, security, and production readiness. The breadth of this stack is exactly why AI-directed development matters here: no single engineer can be a deep expert in Java, Angular, React, C#, PostgreSQL, Kubernetes, and AWS, but one engineer directing AI across all of them can.
What We're Looking For
Required
Strong software engineering fundamentals (APIs, distributed systems, debugging, data flows)
Hands-on AWS experience (3+ years) building and running production workloads; able to reason about IAM, VPC networking, and the cost and failure modes of the services you use
Infrastructure as code on AWS (CloudFormation preferred; CDK or Terraform acceptable)
Full-stack breadth: comfortable moving between backend services, UI, and deployment config in the same day
Working familiarity with containers and Kubernetes (or willingness to ramp fast); can debug a failing pod, read a manifest, and ship a Helm change
Demonstrated experience using AI coding tools (Claude Code, Cursor, Copilot, or similar) to ship real work
Sharp eye for reviewing AI output, especially subtle correctness, security, or deployment issues
Comfort in fast, ambiguous, rapidly changing environments
Bias toward shipping working software over perfect design
Systems thinking: understanding how components interact at scale
Willingness to challenge both human and AI-generated assumptions
Strong written communication: prompting is writing
Strongly Preferred
Hands-on Amazon Bedrock experience: invoking models from code, building agents with tool use / action groups, RAG with Knowledge Bases, and applying Guardrails
Evaluating and validating LLM and agent output in production (test harnesses, eval sets, failure handling), not just demos
Familiarity with agent patterns more broadly (MCP, multi-step tool orchestration, human-in-the-loop checkpoints)
Nice to have: Experience with Java/Jersey, Angular or React, PostgreSQL, or library, public-sector, or multi-tenant SaaS domains.
What Success Looks Like (First 90 Days)
Ship multiple features from concept to demo-ready in ≤5 days each, touching backend, frontend, and deployment where required
Demonstrate effective use of AI to produce production-quality code across the stack
Deliver at least one Bedrock-backed agent workflow from prototype to internal pilot, with guardrails, an evaluation approach, and cost visibility
Establish repeatable, documented workflows for AI-directed development
Measurably improve delivery speed and consistency across your workstreams
Validate and harden AI-generated output before it reaches customers
Help move the team from AI-assisted → AI-directed development
Bottom Line
This is a full-stack + DevOps role on AWS, and that's exactly why AI makes it possible. If you can take an idea, direct AI across Java, TypeScript, SQL, and Kubernetes on AWS, build Bedrock-powered agents into the platform, and deliver something that works in days, this is the job.
Worker Type:
Regular
Number of Openings Available:
1
Listed on hirly, a job board. hirly is not the employer: Volarisgroup is hiring for this role.
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