AI Developer | Solutioning & Architecture | On site (USA-Based Opportunities)

LOGICRAYS TECHNOLOGIES LLC
Woodbridge Township, United States of America
5 days ago

Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Working hours
Regular working hours
Languages
English
Experience level
Intermediate
Compensation
$ 42K

Job location

Woodbridge Township, United States of America

Tech stack

API
Artificial Intelligence
Amazon Web Services (AWS)
Architectural Patterns
Automated Storage and Retrieval Systems
Azure
Cloud Computing
Nvidia CUDA
DevOps
Programming Tools
Infrastructure as a Service (IaaS)
Python
Open Source Technology
TensorFlow
Systems Integration
Web Application Frameworks
AI Infrastructure
Google Cloud Platform
Flask
Large Language Models
GIT
FastAPI
AI Platforms
Kubernetes
Free and Open-Source Software
Machine Learning Operations
TensorRT
Decoding
Data Pipelines
Docker

Job description

not just what works, but how it should work at scale and in production Scope partner architectures against our platform

  • how does this product actually work on our stack, where does it snap together, where does it break Build production-quality proof-of-concepts across the AI stack including agentic pipelines, RAG architectures, inference optimization patterns, and multi-model orchestration Produce working proof-of-concepts that serve as the starting point for product creation

  • not a requirements doc, a working thing Maintain a library of reference architectures and integration patterns that internal product and engineering teams can build from Technical Partner Scoping Work directly with partner engineering teams to scope, prototype, and progress integrations Assess partner architectures honestly

  • if the integration is painful, that is signal; if it snaps together in a weekend, that is also signal; report both Provide technical guidance to partners on how to maximize performance, reliability, and cost efficiency on Company infrastructure Produce technical scoping that gives your pod partner and internal teams a clear picture of integration feasibility, depth, and complexity Internal Translate external integration findings into actionable product requirements for Company platform teams Work with ISV partners, SI teams, and field teams to scale solution adoption and drive revenue once a solution is ready Surface recurring architectural patterns and integration gaps to inform platform roadmap decisions Participate in platform planning as the technical voice of what you are seeing and building in the field Ecosystem Presence Represent Company at hackathons, in open source communities, and at technical events Build in public

  • demos, reference architectures, and integrations that establish Company as the platform serious AI builders choose Stay current with the AI tooling ecosystem

  • you know what shipped last week and what it means for our stack Platform focus areas: Depending on your background and mutual fit, you will focus on one or more of the following: Agentic

  • agent frameworks, memory systems, tool integration, orchestration, MCP, guardrails Managed Inference

  • inference runtimes, model serving, optimization tooling, speculative decoding, KV-cache routing IaaS / Managed Infrastructure

  • cloud-native integrations, GPU orchestration, enterprise platform connectors Data

Requirements

Do you have experience in Systems integration?, Solutioning & Architecture Design and prototype integrations between partner products and the company platform

DevOps tools: Docker, Kubernetes, Git Preferred

technical stack: Languages - Python

ML frameworks - vLLM, SGLang, TensorRT-LLM, Transformers,OpenAI / Anthropic SDKs

Agentic frameworks - LangChain, LangGraph, CrewAI, AutoGen, smolagents, or

equivalent Vector databases - Qdrant, Weaviate, Milvus, pgvector

API and web frameworks - FastAPI, Flask

DevOps - Kubernetes, Docker, Git

Cloud platforms - AWS, GCP, Azure

Experience: 3-6 Years

  • fast, hands-on, and technically sound Define reference architectures for partner integrations, vector databases, retrieval systems, RAG architectures, data pipeline integrations, synthetic data tooling We expect you to have: 6+ years of hands-on engineering experience in AI application development, ML systems, or AI infrastructure Deep working knowledge of the AI developer stack

  • LLM APIs, inference runtimes, orchestration frameworks, vector databases, RAG architectures, agentic pipelines

  • built through shipping, not reading Hands-on experience with agentic frameworks such as LangChain, LangGraph, CrewAI, AutoGen, or equivalent Strong Python programming skills and comfort prototyping end-to-end AI systems quickly Experience defining reference architectures and technical patterns

  • not just implementing them Proven ability to move from idea to working prototype fast - you have shipped meaningful things under time pressure and found it energizing Experience building integrations across APIs and developer platforms

  • you understand where the complexity actually lives Comfortable working across both external partner engineering teams and internal Company product and engineering teams simultaneously Strong technical communication

  • you can explain architecture decisions and integration findings to a founding CTO and a non-technical partner lead in the same day It will be an added bonus if you have: Experience with inference frameworks and optimization: vLLM, SGLang, TensorRT-LLM, speculative decoding, quantization, batching, KV-cache routing Familiarity with NVIDIA's software stack: CUDA, TensorRT, NeMo, or equivalent Experience with multimodal AI models

  • vision-language, speech, or structured data Won or placed at major AI hackathons in the past 12 months Worked as a developer advocate, solutions engineer, or technical partner manager at a leading AI platform or developer tooling company Been an early engineer at a YC-backed AI startup

  • you built the product under real constraints Open source projects or public demos with meaningful community adoption Proficiency with

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