Artificial Intelligence Senior Associate

V2Soft
  • Dearborn, MI
  • Quick Apply
1 day ago

Job Description

V2Soft is a global leader in IT services and business solutions, delivering innovative and cost-effective technology solutions worldwide since 1998. We have We have headquartered in Bloomfield Hills, MI and have 16 offices spread across six countries. We partner with Fortune 500 companies to address complex business challenges. Our services span AI, IT staffing, cloud computing, engineering, mobility, testing, and more. Certified with CMMI Level 3 and ISO standards, V2Soft is committed to quality and security. Beyond our work, we actively support local communities and non-profits, reflecting our core values. Join us to be part of a dynamic and impactful global company!

Please visit us at www.V2soft.com to know more. Position Description:
Employees in this job function are responsible for developing intelligent programs, cognitive applications and algorithms for data analysis and automation, leveraging various AI techniques such as deep learning, generative AI, natural language processing, image processing, cognitive automation, intelligent process automation, reinforcement learning, virtual assistants and specialized programming Key Responsibilities: 1) Understand business requirements and develop AI algorithms, models and programs to solve complex problems, generate recommendations, extract patterns, make predictions, interpret sensor data (images, sound), orchestrate automation and enable self-service capabilities 2) Perform large-scale experimentation and develop data driven applications that translate data into actionable intelligence 3) Drive innovative applications of Artificial Intelligence tools and techniques such as deep learning, generative AI, natural language processing, image processing, cognitive automation, intelligent process automation, reinforcement learning, virtual assistants and specialized programming 4) Research and optimize AI technologies to enhance efficiency and accuracy of data analysis and create more efficient automation
Skills Required:
Google Cloud Platform
Experience Required:
Bachelor's or Master's degree in Computer Science, Software Engineering, or related field (or equivalent practical experience). 3+ years building production software systems, including 1 2+ years on ML/AI or LLM-based applications. Proven experience designing and deploying multi-agent or multi-service architectures in production not just notebooks or demos. As one 2026 hiring analysis puts it, the job is closer to distributed systems engineering with a probabilistic component than it is to ML research or prompt tweaking . Strong Python proficiency, including async/concurrent programming, and experience with backend frameworks (FastAPI, Flask). Hands-on experience with agent orchestration frameworks LangGraph, CrewAI, LlamaIndex, or equivalent for building stateful, multi-step, tool-using agent workflows. Practical experience building RAG pipelines: vector databases (pgvector, Pinecone, Weaviate, or Qdrant), embeddings, chunking strategies, and retrieval evaluation. Cloud deployment experience, ideally Google Cloud Platform (BigQuery, Cloud Run/GKE, Vertex AI, Pub/Sub) or equivalent AWS/Azure services. Strong SQL skills and experience with cloud data warehouses. Containerization and CI/CD experience (Docker, Kubernetes, GitHub Actions/Cloud Build). Experience building evaluation and observability pipelines for LLM/agent systems offline eval sets, LLM-as-judge scoring, and tracing tools (LangSmith, Langfuse, OpenTelemetry, or equivalent) to track task success, latency, and cost. Understanding of LLM safety practices: guardrails, output validation, prompt-injection defense, and safe execution of AI-generated code/SQL (sandboxing, least privilege). Solid software engineering fundamentals: API design, testing, version control, security best practices.
Experience Preferred:
1. Experience with cost optimization and model routing designing tiered pipelines that route between low-cost and high-capability models based on task complexity, and modeling per-conversation or per-task cost at scale. 2. Experience deploying agentic systems with human-in-the-loop or multi-checkpoint validation workflows for high-reliability/high-stakes use cases. 3. Experience with automotive, EV charging, IoT, or connected-vehicle telemetry data. 4. Familiarity with Model Context Protocol (MCP) or similar standards for tool/data integration across agents. 5. Prior experience in a startup or 0-to-1 product environment, comfortable with ambiguity and fast-evolving requirements.
Education Required:
Bachelor's Degree
Education Preferred:
Master's Degree
Additional Information:
Hybrid 4 days a week onsite Architect and deploy the production multi-agent orchestration layer (interpreter/orchestrator, NL-to-SQL agent, visualization agent, RCA/RAG agent, report composition agent, notification agent), using modern agent frameworks with state management and checkpointing rather than ad-hoc loops. Design and productionize RAG pipelines (chunking, embeddings, hybrid retrieval, reranking) grounded in approved schemas, engineering documentation, and historical issue records. Own BigQuery integration and enforce safe, least-privilege, validated execution of LLM-generated SQL. Build CI/CD, containerization, and infrastructure-as-code for deploying agent services on GCP (Cloud Run/GKE, Vertex AI). Implement evaluation pipelines and observability/tracing for every agent (golden datasets, LLM-as-judge scoring, regression alerts) so quality is measurable, not assumed. Implement guardrails, prompt-injection defenses, and human-in-the-loop approval checkpoints to ensure correctness and safety before any output triggers downstream action. Design cost/latency optimization strategies, including tiered model routing (cheap filter models vs. high-capability deep-dive models) and caching. Integrate validated outputs with operational systems (Salesforce ticketing, driver/site-manager notifications) and report export pipelines (PDF/HTML/spreadsheet). Collaborate with data scientists to productionize prototypes (anomaly detection, diagnostic agents) into scalable, monitored services. Establish versioning, testing, and safe rollout practices (canary/shadow deployments) for evolving agent logic.
V2Soft is an Equal Opportunity Employer ( EOE). We welcome applicants from all backgrounds, including individuals with disabilities and veterans.
https://www.v2soft.com/careers - to view all of our open opportunities and to learn more about our benefits.

Numbers & Facts

LocationDearborn, MI

Skills

  • Adobe Acrobatunmatched
  • Algorithmsunmatched
  • Analysis Skillsunmatched
  • Application Programming Interface (API)unmatched
  • Artificial Intelligence (AI)unmatched
  • Artificial Intelligence (AI) Natural Languageunmatched
  • Automationunmatched
  • Best Practicesunmatched
  • Business Solutionsunmatched
  • Cachingunmatched
  • Capability Maturity Model Integration (CMMI)unmatched
  • Cloud Computingunmatched
  • Community Supportunmatched
  • Computer Scienceunmatched
  • Concurrencyunmatched
  • Concurrent Programming Language Familyunmatched
  • Continuous Deployment/Deliveryunmatched
  • Continuous Integrationunmatched
  • Cost Controlunmatched
  • Cost Modelingunmatched
  • Data Analysisunmatched
  • Data Qualityunmatched
  • Data Scienceunmatched
  • Data Setsunmatched
  • Data Warehousingunmatched
  • Deep Learningunmatched
  • Distributed Computingunmatched
  • Documentationunmatched
  • Fortune 500 Customersunmatched
  • GCP (Good Clinical Practices)unmatched
  • GitHubunmatched
  • HTML (HyperText Markup Language)unmatched
  • High Reliabilityunmatched
  • ISO (International Organization for Standardization)unmatched
  • Image Processingunmatched
  • Injectionsunmatched
  • Internet of Thingsunmatched
  • MCP - Microsoft Certified Professionalunmatched
  • Natural Language Processing (NLP)unmatched
  • Nonprofitunmatched
  • Problem Solving Skillsunmatched
  • Product Demonstrationunmatched
  • Production Systemsunmatched
  • Prototypingunmatched
  • Python Programming/Scripting Languageunmatched
  • Quality Metricsunmatched
  • Reinforcement Learningunmatched
  • SQL (Structured Query Language)unmatched
  • Sales Closing Skillsunmatched
  • Salesforce.comunmatched
  • Shallow Parsingunmatched
  • Software Developmentunmatched
  • Software Engineeringunmatched
  • Source Code/Configuration Management (SCM)unmatched
  • Spreadsheetsunmatched
  • Startupunmatched
  • Strategic Analysisunmatched
  • System Validationunmatched
  • Systems Analysisunmatched
  • Systems Engineeringunmatched
  • Technical Leadershipunmatched
  • Technical Recruitingunmatched
  • Telemetryunmatched
  • Test Designunmatched
  • Testingunmatched
  • Use Casesunmatched
  • eLearningunmatched

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