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Remote Ai Chatbot Training Jobs in Washington (NOW HIRING)

Virtual via MS Teams or Zoom Location: 189 Harry S Truman Parkway, Annapolis, MD 21401 (100% remote ... React and Microsoft Teams Toolkit for developing chatbot user interfaces * Non-LLM data analysis ...

New

Virtual via MS Teams or Zoom Location: 189 Harry S Truman Parkway, Annapolis, MD 21401 (100% remote ... React and Microsoft Teams Toolkit for developing chatbot user interfaces * Non-LLM data analysis ...

New

AI Engineer

Washington, DC · On-site +1

$99K - $225K/yr

Remote Work: Hybrid Job Number: R0244899 Location: Washington,DC,US Share job via: Share AI ... Experience with end-to-end chatbot or agent to agent (A2A) development * Experience with enterprise ...

Remote Job Summary: We are seeking seasoned in-house transactional attorneys for a part-time role ... Prior exposure to AI, legal tech, or training initiatives. * Experience at a corporate law firm in ...

Remote Job Summary: We are seeking seasoned in-house transactional attorneys for a part-time role ... Prior exposure to AI, legal tech, or training initiatives. * Experience at a corporate law firm in ...

Remote Job Overview We are seeking experienced AI Data Science Domain Experts to contribute their ... Annotate data and support quality assurance initiatives for AI training. * Interpret complex ...

Remote Job Summary: We are seeking seasoned General Counsels for a part-time role at the forefront ... Prior exposure to AI, legal tech, or training initiatives. * Experience at a corporate law firm in ...

Remote Job Summary: We are seeking seasoned General Counsels for a part-time role at the forefront ... Prior exposure to AI, legal tech, or training initiatives. * Experience at a corporate law firm in ...

Remote Job Overview We are seeking experienced GIS / Geospatial Experts with hands-on experience in ... No prior AI training experience is required. Key Responsibilities * Provide expert analysis and ...

Enjoy the flexibility of remote work and the freedom to set your own schedule. This is an ... To succeed in this position, you should have expert-level financial reasoning and formal training ...

Showing results 21-40

Remote Ai Chatbot Training information

What is the difference between Remote Ai Chatbot Training vs Remote Data Annotation Specialist?

AspectRemote Ai Chatbot TrainingRemote Data Annotation Specialist
Required CredentialsBasic understanding of AI, training data knowledgeAttention to detail, familiarity with annotation tools
Work EnvironmentRemote, collaborative with AI teamsRemote, focused on data labeling tasks
Industry UsageAI development, chatbot creationMachine learning, data preparation
Common Search IntentTraining AI chatbots remotelyAnnotating data for AI models

Remote Ai Chatbot Training involves preparing AI models by training chatbots with relevant data, while Remote Data Annotation Specialists focus on labeling data to improve AI accuracy. Both roles are remote, require attention to detail, and support AI development, but they differ in specific tasks and focus areas.

What are the most commonly searched types of Ai Chatbot Training jobs in Washington?

The most popular types of Ai Chatbot Training jobs in Washington are:

What are popular job titles related to Remote Ai Chatbot Training jobs in Washington?

For Remote Ai Chatbot Training jobs in Washington, the most frequently searched job titles are:

What cities in Washington are hiring for Remote Ai Chatbot Training jobs?

Cities in Washington with the most Remote Ai Chatbot Training job openings:

AI/ML Software Engineer

3B Staffing LLC

Annapolis, MD • On-site, Remote

Full-time

This job post has expired today. Applications are no longer accepted.


Job description

Position: AI/MLSoftware Engineer

The client seeks an AI/ML Software Engineer to build software tools that incorporate AI/ML techniques to automate narrowly defined tasks with high accuracy, assist internal users with their job functions, and improve the external user experience. This includes, but is not limited to, RPA work, building or refining chatbots, incorporating AI/ML into reporting tools, building LLM agents for knowledge retrieval, deep research, translation, transcription, redaction, document analysis, document generation, agentic coding, and data processing.

Contract duration: Five years

Interview mode: Virtual via MS Teams or Zoom

Location: 189 Harry S Truman Parkway, Annapolis, MD 21401 (100% remote but the resource must be onsite for the first two days AND must be able to report onsite within 72 hours after notification)

*No Visa restrictions*

Duties/Responsibilities

System Design & Collaboration:

  • Work within established constraints regarding infrastructure, programming languages, and model selection
  • Contribute to technical decision-making related to data processing, retrieval strategies, and system integration
  • Collaborate with team members to define agent architectures, workflows, and system design decisions
  • Evaluate and select appropriate approaches for given tasks, including determining when to use LLM-based versus non-LLM techniques
  • Designing and building software systems that integrate AI/ML techniques to automate tasks, assist internal users, and improve user-facing services.

Testing, Evaluation, and Quality Assurance:

  • Assist in the design and implementation of testing and evaluation pipelines for AI/ML systems
  • Develop unit and integration tests for AI-enabled workflows and data pipelines
  • Generate and utilize synthetic data to support evaluation and benchmarking efforts
  • Contribute to improving system performance, including accuracy, latency, and cost efficiency

Deployment & Operations:

  • Support deployment of AI/ML applications within a hybrid cloud environment
  • Work with containerized applications to ensure reliable deployment and updates
  • Optimize systems for environments with limited computational resources, including minimal GPU availability

General Responsibilities:

  • Deliver production-grade systems aligned with defined requirements, while supporting iterative improvement of evolving tools
  • Document system designs, workflows, and technical decisions as required
  • Stay informed on relevant advancements in AI/ML and apply them where appropriate within project constraints

Minimum Qualifications

  • Three (3) years' experience in data science, machine learning, or applied AI development.
  • Three (3) years' experience in software engineering, architecture, or web development.
  • Experience with:
    • SQL and relational database systems (e.g., PostgreSQL)
    • Fine-tuning small language models or embedding models
    • Contributing to or maintaining open-source software projects
    • Graph databases or graph extensions (e.g., Neo4j, Apache AGE)
    • Designing and implementing multi-agent or task-oriented AI systems
    • Embedding models, vector similarity, re-ranking, and graph retrieval techniques in RAG systems
    • Version control systems (e.g., Git), containerization technologies (e.g., Docker), and service-oriented architecture
    • Collaborating with large language models (LLMs), including both API-based integration and local deployment
    • Validating AI-generated outputs, mitigating hallucinations, and integrating AI tools into production service pipelines
  • Ability to:
    • Understand data structures, algorithms, and clean coding principles
    • Select and apply appropriate techniques (LLM and non-LLM) based on task requirements
    • Develop and improve testing and evaluation pipelines for AI systems, including use of synthetic data
    • Demonstrate proficiency in Python, including the ability to develop production-grade backend services, APIs, middleware, and data pipelines.
    • Design and implement AI/ML systems that operate effectively on complex, inconsistent, or evolving datasets while balancing accuracy, latency, and cost (token consumption)
    • Collaborate with team members to define system architecture, agent workflows, and data pipelines while working in constrained environments, including limited GPU availability and predefined infrastructure
  • Knowledge of:
    • Hybrid cloud environments and distributed system considerations
    • Threading, asynchronous processing, and queues in backend servers
    • React and Microsoft Teams Toolkit for developing chatbot user interfaces
    • Non-LLM data analysis techniques for structured, semi-structured, and unstructured data
    • Classical natural language processing (NLP) techniques in addition to LLM-based approaches
    • Data science and LLM-related libraries in Rust or other performance-oriented programming languages

Education: Bachelor of Science in Engineering, Computer Science, Data Science, or Mathematics, or a related field.