Best AI Staffing Agencies

10Clouds vs ScienceSoft: full comparison for 2026

Quick verdict

10Clouds (4.1/5) edges ahead of ScienceSoft (4.0/5) overall. 10Clouds is the better choice for Banks, insurers and fintechs building AI features. ScienceSoft is the stronger option for regulated industries hiring experienced data scientists. The right choice depends on your project size, budget, and required tech stack.

10Clouds vs ScienceSoft: head-to-head summary

Criterion 10Clouds ScienceSoft
Founded 2009 1989
HQ Warsaw, Poland McKinney, Texas, USA
Team size 100–200 750+
Rating 4.1 / 5 4.0 / 5
Primary differentiator Financial-services AI focus with Claude partner status Senior data scientists with a published hiring timeline
Pricing model Time and materials; fixed-term staff augmentation; rates on request Time and materials; rates sent with CVs
Min. engagement Not disclosed Not disclosed
Primary tech stack Python, Claude, OpenAI Python, R, Azure ML
Industries served Fintech, Banking, Insurance, SaaS Healthcare, Manufacturing, Fintech, Retail

10Clouds vs ScienceSoft: overview

10Clouds

10Clouds was founded in 2009 in Warsaw by Maciej Cielecki and others, and employs somewhere between 100 and 200 people depending on the source. It keeps an in-house product team and also supplies developers or designers to clients for fixed periods, a model it has used with U.S. clients such as Rippling. In 2026 it announced a merger with 10Clouds Financial Institutions, creating an AI unit for banks, insurers and fintechs, and it is a Select partner in the Claude Partner Network services track.

ScienceSoft

ScienceSoft dates its IT work to 1989 and is headquartered in McKinney, Texas, with representative offices in the UAE, Saudi Arabia, Europe and Mexico. Its staff-augmentation pool covers more than 750 professionals, including data scientists with 7–20 years of experience. The company says it sends CVs with rates within 24 hours, arranges interviews in two to four days and has people starting within one to two weeks (per company website; independently unverifiable).

Services and capabilities: 10Clouds vs ScienceSoft

Capability 10Clouds ScienceSoft
LLM / GenAI engineers ✓ ✗
MLOps & deployment ✗ ✗
Computer vision ✗ ✗
Data engineering ✗ ✓
AI agent development ✓ ✗
Fractional / part-time experts ✗ ✗
Risk-free trial period ✗ ✗
Nearshore time-zone overlap ✗ ✗

Tech stack comparison: 10Clouds vs ScienceSoft

Framework / platform 10Clouds ScienceSoft
PyTorch N/A N/A
TensorFlow N/A N/A
LangChain ✓ N/A
Hugging Face N/A N/A
OpenAI ✓ N/A
AWS SageMaker N/A ✓
Azure ML N/A ✓
Databricks N/A N/A
MLflow N/A N/A
Kubernetes N/A N/A

Pricing comparison: 10Clouds vs ScienceSoft

Criterion 10Clouds ScienceSoft
Minimum engagement Not disclosed Not disclosed
Engagement models Full-time dedicated engineers, Managed delivery Full-time dedicated engineers, Dedicated team, Managed delivery
Rate transparency Not public Not public
Price tier Mid-market Mid-market

Target audience comparison: 10Clouds vs ScienceSoft

Dimension 10Clouds ScienceSoft
Best company size Startup to mid-market Startup to mid-market
Best industries Fintech, Banking, Insurance Healthcare, Manufacturing, Fintech
Best use cases Adding an agent developer to a bank's internal automation team, Staffing an LLM engineer for an insurer's claims product Adding a senior data scientist to a healthcare analytics team, Staffing a manufacturing predictive-maintenance project
Typical project type Full-time dedicated engineers Full-time dedicated engineers

10Clouds vs ScienceSoft: pros and cons

10Clouds
+ Clear industry focus on regulated financial services
+ Claude Partner Network status for teams building on Anthropic models
+ Has worked as an embedded team for U.S. scale-ups
- The 2026 merger means leadership and structure are still settling
- Small bench for large placements
- Rates not published
ScienceSoft
+ Rates arrive with the CVs, before any sales calls
+ Long history in healthcare and manufacturing IT
+ Experienced data scientists rather than junior ML hires
- AI is one of many service lines
- Smaller bench than the large nearshore firms
- Headcount figures differ between the company's own pages

Who should choose 10Clouds?

A typical fit: adding an agent developer to a bank's internal automation team.

Financial-services AI focus with Claude partner status. Minimum engagement is not publicly disclosed. Works best with clients in Fintech, Banking, Insurance, SaaS.

Who should choose ScienceSoft?

A typical fit: adding a senior data scientist to a healthcare analytics team.

Senior data scientists with a published hiring timeline. Minimum engagement is not publicly disclosed. Works best with clients in Healthcare, Manufacturing, Fintech, Retail.

Decision matrix: 10Clouds vs ScienceSoft

Your situation Recommended choice
You need full-ownership delivery on a defined project scope Both offer fixed-price models
You need a large dedicated team for an ongoing programme 10Clouds
Your budget is at the lower end Compare: 10Clouds (Not disclosed) vs ScienceSoft (Not disclosed)
You need specialist depth in a specific vertical 10Clouds
You need staff augmentation or team extension Neither; consider alternatives that offer staff aug
You need consulting before committing to a build Both may offer discovery engagements

Use case fit: 10Clouds vs ScienceSoft

Use case 10Clouds fit ScienceSoft fit Winner
Adding an agent developer to a bank's internal automation team Strong Strong Both equally
Staffing an LLM engineer for an insurer's claims product Strong Strong Both equally
Adding a senior data scientist to a healthcare analytics team Strong Strong Both equally
Staffing a manufacturing predictive-maintenance project Strong Strong Both equally

Verdict: 10Clouds vs ScienceSoft

10Clouds (4.1/5) is the stronger overall choice for most AI Staffing projects. Financial-services AI focus with Claude partner status.

ScienceSoft (4.0/5) is worth a look if you need staffing a manufacturing predictive-maintenance project. If your situation matches that, ScienceSoft is a competitive option.

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10Clouds vs ScienceSoft FAQ

Is 10Clouds better than ScienceSoft?

10Clouds (4.1/5) scores higher overall, but "better" depends on your use case. 10Clouds's strongest advantage: clear industry focus on regulated financial services. ScienceSoft's strongest advantage: rates arrive with the CVs, before any sales calls.

How do 10Clouds and ScienceSoft differ in pricing?

10Clouds uses time and materials; fixed-term staff augmentation; rates on request pricing. ScienceSoft uses time and materials; rates sent with cvs pricing. Neither firm publishes a full rate card; a discovery call is required for project-specific quotes.

Which is better for enterprise: 10Clouds or ScienceSoft?

10Clouds is the larger team and typically the better enterprise-scale choice. For very large programmes, verify team size and compliance coverage directly with each agency before shortlisting.

What are the main differences between 10Clouds and ScienceSoft?

10Clouds's primary differentiator is: financial-services AI focus with Claude partner status. ScienceSoft's primary differentiator is: senior data scientists with a published hiring timeline. They also differ in team size (100–200 vs 750+), minimum engagement (Not disclosed vs Not disclosed), and primary industries served (Fintech, Banking vs Healthcare, Manufacturing).

Verify all details directly with each agency before making a decision.