Technical Consultant- GenAI

CTP

Dallas (TX)

On-site

USD 90,000 - 120,000

Full time

5 days ago
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Job summary

CTP is seeking a Technical Consultant, Gen AI, to help deliver data-driven solutions for clients in AI, ML, and data engineering. You will work with SQL, Python, and cloud tooling to build pipelines, run analyses, and assist with configurations under senior guidance.

Based in Addison, TX, this onsite role requires you to collaborate across teams, learn client environments, and contribute to documentation. Strong communication and a growth mindset are essential for success in this dynamic setting.

Qualifications

  • Bachelor's degree in CS/DS/IS/Engineering or equivalent.
  • SQL proficiency to write/read/analyze real datasets.
  • Foundational Python; pandas or similar libraries.
  • Exposure to cloud platforms or data tooling.
  • Strong written communication and proactive status updates.

Responsibilities

  • Contribute to client engagements by writing code, building pipelines, and supporting configuration.
  • Take ownership of tasks and ensure quality before submission.
  • Learn client environments, tools, data, and business context.
  • Document data dictionaries, runbooks, and test logs with accuracy.
  • Apply SQL, Python, and cloud tooling to solve real problems.

Skills

SQL
Python
Cloud tooling
Written communication
Proactive collaboration

Education

Bachelor's degree in Computer Science or related field

Tools

dbt
Airflow
Snowflake
BigQuery
Git

Job description

Location: Addison, TX – Onsite 4 days a week

The Company

Headquartered in Dallas TX, our client is a technology and strategy consultancy that aims to provide a competitive edge for its clients by solving complex problems with data, software, and strategy. They specialize in areas like technology strategy, product development, software engineering, and digital transformation, with a particular emphasis on AI, MLOps, and Data Engineering. The firm's clientele spans various industries, including AgTech, Healthcare, Logistics, and Financial Services.

Platform / Stack

You will work with technologies that include RAG, Agentic AI, Python, and MCP Servers.

What You'll Do As a Technical Consultant, Gen AI:
  • Delivery Contribution
  • Contribute to assigned tasks within client engagements — writing code, building pipelines, running analysis, or supporting configuration — under the direction of senior consultants and architects.
  • Take ownership of the tasks you are given: completing them to the standard described, checking your own work before calling it done, and raising questions early rather than submitting work you are unsure about.
  • Learn the client's environment quickly: their tools, their data, their processes, and the business context that makes some things matter more than others.
  • Support documentation tasks — data dictionaries, pipeline runbooks, meeting notes, test logs — with the care and accuracy that makes them genuinely useful rather than boxes checked.
  • Technical Learning & Application
  • Apply your technical foundations in SQL, Python, and cloud tooling to real problems, learning to adapt what you know to the constraints and conventions of each client's environment.
  • Actively learn the tools, platforms, and patterns in use on your engagement — dbt, Airflow, Snowflake, cloud services, AI frameworks — treating each project as an opportunity to extend your technical depth.
  • Professional Conduct & Client Presence
  • Communicate proactively: let people know your status before they ask, surface blockers early enough for them to be resolved without disrupting the team, and be honest about what you do and do not know.
  • Receive feedback well: listen to it, act on it, and treat it as the most direct path to becoming someone whose work doesn't need to be reviewed twice.
  • Be someone your team can count on — not the most technically advanced person in the room, but someone whose word means something and whose work holds up.
  • Growth & Initiative
  • Take initiative on your own development: identify the gaps in your knowledge that are limiting your contribution and actively close them, rather than waiting for someone to schedule training.
  • Observe how senior consultants operate — how they communicate, how they plan their work, how they handle uncertainty — and develop your own practice from those observations.
  • Identify process and technical improvements within your engagement and raise them clearly — with a proposed solution, not just an identified problem.
  • Contribute to the internal knowledge base: documenting patterns, lessons learned, and reusable accelerators that make the next engagement better.
Qualifications:

You could be a great fit if you have:

  • A bachelor's degree in Computer Science, Data Science, Information Systems, Engineering, or a related technical field — or equivalent demonstrated technical competence through project work, bootcamp, or professional experience.
  • Working knowledge of SQL: able to write, read, and debug queries against real datasets without assistance on straightforward tasks.
  • Foundational Python skills: able to write scripts, work with data using pandas or similar libraries, and read and modify existing code.
  • Some exposure to cloud platforms, data tools, or software development workflows — whether through coursework, personal projects, or prior employment.
  • Strong written communication skills: able to write clear, professional emails, status updates, and documentation without requiring significant editing.
  • A genuine interest in how technology is applied to solve real business problems — not just in building technical things for their own sake.
  • The professional reliability to show up prepared, meet deadlines, communicate proactively, and take feedback seriously.
  • Preferred
  • Internship, co-op, or project experience in a professional technical environment — any exposure to the difference between classroom work and production work is valuable context.
  • Familiarity with modern data tools such as dbt, Airflow, Snowflake, or BigQuery — even at a conceptual or self-study level.
  • Exposure to AI and ML concepts: what models are, how they are trained and evaluated, and where they succeed and fail in practice.
  • Experience with version control (Git) and basic software development workflows.
  • A portfolio of technical projects — academic or personal — that demonstrates you build things with real data and care about how they work.
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