Sales Hunter - Manufacturing
Job in
Dallas, Dallas County, Texas, 75215, USA
Listed on 2026-03-05
Listing for:
Covasant
Full Time
position Listed on 2026-03-05
Job specializations:
-
IT/Tech
AI Engineer, Machine Learning/ ML Engineer, Data Scientist
Job Description & How to Apply Below
We are looking for experienced AI/ML Architects to join our AI Engineering service line. In this role, you will anchor the technical delivery of enterprise AI/Agentic AI projects post deal-closure. You will take over from solution architects and lead the design, build, deployment, and optimization of AI/ML systems — ensuring production-grade quality, scalability, and compliance. You will interface with cross-functional teams, manage engineering complexity, and ensure value realization for customers across industries such as BFSI, HLS, Manufacturing, CMT, Retail, and Energy
.
- Own the end-to-end technical architecture and solution integrity during project delivery.
- Translate solution blueprints into detailed technical designs, backlog, and integration plans
. - Lead detailed design reviews
, ensure alignment with AI platform, MLOps, and Agentic AI best practices. - Select appropriate frameworks, APIs, libraries, and cloud-native services for implementation.
- Serve as technical anchor for customer AI/ML and Agentic AI projects.
- Guide engineering teams on modular, secure, and reusable implementation strategies.
- Review and validate code, infrastructure scripts, and ML pipelines for quality, performance, and reliability.
- Oversee data pipelines
, model training
, LLMOps
, and model deployment workflows
.
- Provide hands-on support for complex components: LLM pipelines, vector stores, fine-tuning, evaluations.
- Resolve system integration challenges across APIs, knowledge stores, and orchestration layers.
- Implement or validate MLOps workflows using MLflow, Airflow, Argo, KServe, BentoML
, etc. - Embed observability, safety, and compliance into the AI/ML lifecycle.
- Integrate with AI governance platforms for model tracking, versioning, audits
, and risk controls
. - Ensure alignment with enterprise and regulatory standards like NIST AI RMF, EU AI Act
, and internal responsible AI policies. - Act as the technical point of contact for client-side engineering and data science teams during delivery.
- Participate in sprint planning, status reviews, and change control boards.
- Support knowledge transfer, UAT, documentation, and post-deployment handoffs.
- B.Tech/M.Tech or equivalent in Computer Science, Data Science, or a related field.
- 8+ years in software architecture or engineering with 5+ years in applied AI/ML system delivery.
- Experience in product ionizing AI/ML models and building full-stack AI applications in enterprise settings.
- Strong Python development skills; proficiency in ML/AI frameworks (PyTorch, Tensor Flow, Scikit-learn).
- Strong understanding of LLMs, RAG pipelines
, vector databases (Weaviate, Qdrant, Pinecone). - Experience with MLOps/LLMOps tools: MLflow, Argo, KServe, Feast, Kubeflow.
- Proficiency in data pipeline engineering using Spark, Airflow, or Data Flow.
- Exposure to agent orchestration frameworks
:
Lang Chain, Lang Graph, Auto Gen, CrewAI is a big plus. - Hands-on experience with GCP (Vertex AI, Big Query, Document AI, AI Gateway) and/or Azure (Azure ML, OpenAI, Synapse).
- Expertise in containerization (Docker) and orchestration (Kubernetes).
- Familiarity with Infrastructure as Code (Terraform, Pulumi, CDK).
- Strong architectural thinking and problem-solving in fast-paced delivery environments.
- Excellent communication and collaboration skills to work across cross-functional teams and clients.
- Proactive, structured, and detail-oriented with a bias for execution.
- Experience in real-world deployments of Agentic AI systems or collaborative multi-agent setups.
- Exposure to regulatory/ethical concerns in AI such as fairness, transparency, or bias mitigation.
- Familiarity with AI observability, explainability, and governance tooling (e.g., Arize, Fiddler, Tru Era).
- Work on high-impact AI and Agentic AI projects across global enterprise clients.
- Opportunity to be part of a deep-tech delivery team and lead cutting-edge implementations.
- Continuous learning opportunities through workshops, certification support, and technical mentoring.
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